Outreach, founded in 2014, is the only complete platform for revenue teams. Outreach infuses agentic AI, conversation intelligence, and assistive AI to power hundreds of use cases across revenue motions. From new logo prospecting to expansions, deal acceleration, driving retention, and forecasting, Outreach AI automates workflows and frees sellers to focus on more strategic conversations and actions. Revenue leaders benefit from connected account visibility, performance insights, and higher forecasting accuracy across every GTM team. World leading enterprise organizations use Outreach to power their revenue teams, including Databricks, SAP, Siemens, and Verizon to name a few.
About the Team
The Dialog Understanding and Generation team is building the industry's most advanced agentic AI capabilities for revenue orchestration, the end-to-end coordination and execution of sales and customer engagement workflows. Our mission is to transform raw customer interactions and CRM data into structured intelligence that powers the entire revenue lifecycle.
We operate at the intersection of machine learning, LLM-powered systems, and cloud-scale engineering, driving both current and next-generation AI initiatives at Outreach.
We are a team of applied data scientists who thrive on solving complex scientific and engineering challenges. The work is roughly an even split between applied ML research and production engineering, so you should be excited about both. You'll collaborate closely with exceptional engineers and product managers in a fast-moving, high-impact environment, applying your creativity and expertise to build innovative solutions that push the boundaries of agentic AI.
Listed by Outreach.io for a position based in the United States. Employers on this board attest they are hiring domestically.
Engineering
105 days ago
Lead GTM Enablement & Scale Architect, Product Enablement
Delivery Solutions Architect - Public Sector, Charlotte, North Carolina; Delaware; Maryland; New Jersey; New York City, New York; Philadelphia, Pennsylvania; Remote - Virginia; Remote - Washington D.C.; West Coast - United States; West Virginia. Join us! Together we can use data to solve the challenges of tomorrow
Listed by Databricks for a position based in the United States. Employers on this board attest they are hiring domestically.
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Sr. DevOps Engineer at TaxGPT(S24)
$140K - $160K
AI tax assistant for professionals and businesses
San Francisco, CA, US / Remote (US)
Full-time
Will sponsor
6+ years
Apply now
About TaxGPT
TaxGPT is building an AI co-pilot for tax accountants to increase their productivity and profit by 10x.
About the role
About Us
TaxGPT is revolutionizing the tax and accounting space with AI-driven solutions tailored for accountants, tax professionals, and SMBs. We're building an AI co-pilot to transform tax workflows, drive efficiency, and simplify compliance. Recently named one of Business Insider’s 30 Early-Stage Startups Most Likely to Become Tech’s Next Unicorns, we'd love for you to join our growing team!
Location: US Remote
Pay Range: $140k to $160k + Equity + Variable Comp up to 20% of base salary
Benefits offered: Medical, dental, vision, 401k + 3% match, life insurance
About the Role
We are looking for a Senior DevOps Engineer with 7+ years of experience to help build, scale, and secure our infrastructure, deployment systems, and developer operations. This person will play a critical role in improving reliability, performance, security, and engineering velocity across the company.
You will work closely with software engineers, product teams, and technical leadership to design and maintain systems that support fast development, stable production environments, and long-term scalability.
This is a senior individual contributor role for someone who can operate with high autonomy, own critical infrastructure, make strong architectural decisions, and raise the technical bar across the engineering organization.
What You’ll Do
Infrastructure and Platform Ownership
Own the design, implementation, and long-term health of cloud infrastructure and internal platform systems
Build and maintain scalable, secure, and reliable infrastructure across development, staging, and production environments
Improve infrastructure automation, environment consistency, and operational resilience
Manage networking, compute, storage, observability, and access controls across core systems
CI/CD and Developer Productivity
Design, improve, and maintain CI/CD pipelines for fast, safe, and repeatable deployments
Build tooling and workflows that improve developer experience and reduce operational friction
Standardize release processes, deployment practices, and rollback strategies
Identify bottlenecks in development and deployment workflows and drive improvements
Reliability, Monitoring, and Incident Response
Improve system reliability, availability, and performance through strong operational practices
Build and maintain monitoring, alerting, logging, and incident response systems
Lead root cause analysis and drive permanent fixes for recurring operational issues
Establish and improve standards around uptime, recovery, and production readiness
Security and Compliance
Implement infrastructure security best practices across environments and workflows
Strengthen access controls, secrets management, auditability, and system hardening
Partner with engineering leadership to reduce operational and security risk
Support compliance, backup, disaster recovery, and resilience initiatives where needed
Technical Leadership
Lead architectural decisions related to infrastructure, deployment systems, and platform reliability
Partner with engineering leaders to shape long-term infrastructure strategy
Mentor engineers on infrastructure, deployment, observability, and operational best practices
Raise the team’s standards through documentation, design reviews, code reviews, and process improvements.
What We’re Looking For
Required Qualifications
7+ years of experience in DevOps, Site Reliability Engineering, Platform Engineering, or Infrastructure Engineering
Strong experience designing and managing production infrastructure in cloud environments such as AWS, GCP, or Azure
Deep experience with CI/CD systems, infrastructure automation, and deployment pipelines
Strong knowledge of containers and orchestration, including tools such as Docker and Kubernetes
Experience with Infrastructure as Code tools such as Terraform, Pulumi, or CloudFormation
Strong experience with monitoring, logging, and observability tools
Experience improving reliability, security, and scalability in production systems
Strong scripting or coding ability in languages such as Python, Bash, or Go
Strong understanding of networking, system design, access control, and cloud security fundamentals
Preferred Qualifications
Experience supporting fast-moving startup engineering teams
Experience building internal developer platforms or self-service infrastructure tooling
Familiarity with modern security and compliance practices
Experience with incident management, postmortems, and operational maturity improvements
Experience working closely with backend and application engineering teams to improve system design and delivery quality
How We Define Success in This Role
A strong Senior DevOps Engineer in this role:
operates with high autonomy and needs little day-to-day direction
owns critical infrastructure and improves its long-term health
makes strong architectural and operational decisions
improves developer velocity without compromising reliability or security
mentors others and raises the engineering bar across the team
brings structure and clarity to complex infrastructure and operational challenges
Key Responsibilities:
Autonomy
Works independently on complex infrastructure and reliability problems
Identifies risks and improvements before they become urgent issues
Translates broad engineering goals into clear technical plans
System Ownership
Owns critical infrastructure, deployment systems, and platform reliability
Takes responsibility for scalability, resilience, maintainability, and operational health
Drives long-term fixes, not just short-term patches
Mentoring and Collaboration
Guides engineers on infrastructure and operational best practices
Improves team effectiveness through documentation, reviews, and technical support
Collaborates closely with engineering, product, and leadership teams
Architectural Decision-Making
Makes sound decisions on cloud architecture, deployment strategy, observability, and security
Evaluates tradeoffs carefully across cost, speed, reliability, and complexity
Builds systems that scale with company needs
Why Join Us
You’ll have the opportunity to shape the foundation of our engineering platform and help define how infrastructure, reliability, and developer operations scale as the company grows. This is a high-impact role for someone who enjoys ownership, technical depth, and building systems that make the entire engineering organization stronger.
Technology
Django React JS NextJs RDS (Relational Data) AWS Kubernetes Azure AI Studio Amazon Bedrock Databricks
Apply now
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Listed by TaxGPT for a position based in the United States. Employers on this board attest they are hiring domestically.
Engineering
112 days ago
Forward Deployed Engineer
Beacon Software · San Francisco, CA, United States
BEACON SOFTWARE
Forward Deployed Engineer
Location
San Francisco, CA
Employment Type
Full time
Location Type
On-site
Department
Engineering
Overview
Application
About Beacon Software
Beacon is acquiring and operating a portfolio of vertical SaaS companies. Most private equity firms scale by adding people. We are building Beacon to scale by adding software. The thesis is simple: portfolio operations, value creation, and deal sourcing are bottlenecked by human attention, and an agentic operating system can lift that ceiling by an order of magnitude.
We are building that system. It has two pieces. A sensing layer is a cross-portfolio data lake on open table formats with a feature store on top that makes the data agent-readable. An action layer runs workflows across three domains: how we run the portfolio, how we grow the portfolio, and how we acquire into it. Underneath both sits a feedback loop that captures every action and outcome with stable identifiers.
Beacon has raised $550M+ from investors including General Catalyst, Lightspeed, D1 Capital, CPMG, and the family offices of the founders of Stripe, DoorDash, and Ramp.
About the Role
Forward Deployed Engineers (FDEs) are the engineers who go where the work is. You will be embedded with one or two portfolio companies at a time — sitting with the GM, the operators, and the customer success lead — figuring out where the leverage is, and shipping agentic software directly into their operation. The platforms exist. You are the person who turns them into outcomes on a specific business.
This is a Palantir-style FDE role applied to private equity operations. You will spend a meaningful fraction of your time on-site or in the portco’s tools, and the rest of your time back at Beacon HQ pulling the patterns you learned back into the platform. The best FDEs at Beacon will not just deliver for the portcos they are deployed at — they will compress what they learned into reusable playbooks that ship to every other portco in the same vertical.
This is not a consulting role. We ship software, not slides. The deliverable is a running system.
What You'll Do
Embed deeply with portcos. Spend the first few weeks at a new portco understanding the operating model from the inside: what the GM cares about, where revenue actually comes from, where the team’s time goes, where the system is leaking. Earn the trust of the operators before you start changing things.
Find the leverage. Identify the 2–3 workflows where agentic software will meaningfully change the trajectory of the business — churn-save, pricing experiments, lead enrichment, support deflection, AR follow-up, bug-fix PRs, weekly pulse, whatever the specific portco needs. Pick the wedge, not the wish list.
Ship the wedge. Build the integrations, the prompts, the evals, the workflows, and the UI surfaces required to land the first agentic loop at that portco. Use the platforms our core engineering team is building, and extend them when they fall short.
Operate the loop. Stay close to the system after it ships. Watch the outcomes. Tune the prompts. Adjust the autonomy tier as the system earns trust. Hand off cleanly to portfolio ops once the loop is stable.
Compound the learnings. Bring the patterns back to HQ. Codify what worked into playbooks that ship to every other portco in the vertical. The 11th deployment in a home-services SaaS should be 10x faster than the 1st, and that compression is your job as much as the engineers building the platform.
Carry the GM relationship. You are the technical face of Beacon to the portco GM. Build the trust, set the expectations, and make sure the GM sees the system as their leverage — not Beacon’s audit tool.
Who You Are
A strong generalist engineer. You can ship full-stack TypeScript or Python on the backend, React on the frontend, SQL fluently, comfortable in someone else’s codebase within a day. You do not need to be a specialist in any one stack. You need to be the person who can land the whole thing.
Customer-obsessed. You like being in the room with the operator, the GM, the customer success lead. You take the problem they actually have, not the problem they described. You are not interested in building platforms that no one uses.
High autonomy, low ego. You will be the only Beacon engineer on the ground at a portco most of the time. You need to make calls without a committee, defend them when challenged, and change your mind when you are wrong.
Comfortable with LLM-native engineering. You have shipped real software using foundation models — not toy demos. You know how to write evals, when to fine-tune, how to keep an agentic workflow from going off the rails, and where the autonomy tier should sit for any given action class.
Operator instincts. You can read a P&L. You understand why a churn-save matters more than a feature launch this quarter. You know that a 5-point improvement in support deflection is worth more than a 50-point improvement in code-review velocity, depending on the business.
Strong written communicator. Beacon runs on writing. You will write the wedge memo, the GM update, the post-deployment retro, the playbook that ships to every other portco. If your writing is fuzzy, the system stays fuzzy.
Bonus Points
Prior FDE experience
PE, consulting, or M&A diligence exposure, particularly the post-LOI integration cadence
Comfort with Iceberg-based data platforms (Snowflake, Databricks) and event-driven systems
Built or operated agentic systems in production, including evals, autonomy gating, and outcome tracking
Our Values at Beacon Software
Humility: We acknowledge that the path to getting to the right answer involves being wrong along the way. We have strong beliefs which are weakly held. We actively seek new ideas and believe we can learn from anyone at any time.
Honesty: We are truth seeking in our approach to business problems. Business is a repeat game and we believe that human relationships generate alpha. We understand that trust is earned over a lifetime and can be lost in an instant.
Hunger: We play to win. We hold ourselves to high standards and will not be outworked. We take pride in having a deep sense of responsibility to ourselves, each other, our partners, and our customers. We believe to whom much is given much is expected.
Horizon: We seek to build a generational software company. This will take decades. We manage our expectations and those of our partners to take advantage of the 8th wonder of the world - compounding growth.
How We Use AI in Our Hiring Process: To ensure transparency, we want candidates to know that Beacon Software uses Artificial Intelligence and AI-enabled tools to assist with screening, reviewing, organizing and highlighting profiles and applications that match the key requirements for each role.
AI does not make hiring decisions: Every application is reviewed by a member of our team, and all decisions throughout the process are made by humans. We use AI to support efficiency and consistency, not to replace human judgment. We are committed to a fair, thoughtful, and equitable experience for every candidate.
Apply for this Job
Powered by
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Listed by Beacon Software for a position based in the United States. Employers on this board attest they are hiring domestically.
Engineering
112 days ago
Member of Technical Staff
Beacon Software · San Francisco, CA, United States
Beacon is acquiring and operating a portfolio of vertical SaaS companies. Most private equity firms scale by adding people. We are building Beacon to scale by adding software. The thesis is simple. Portfolio operations, value creation, and deal sourcing are bottlenecked by human attention, and the right software platform can lift that ceiling by an order of magnitude.
We are building that platform. A cross-portfolio datalake on open table formats, with a feature store on top that makes the data usable by both people and software. An action layer that runs workflows across three domains: how we run the portfolio, how we grow the portfolio, and how we acquire into it. A feedback loop underneath that captures every action and outcome with stable identifiers. By the next phase of buildout we will have 100+ portfolio companies running on this platform. That is a problem set with serious data scale, real multi-tenant isolation requirements, and very few precedents to copy from.
Beacon has raised $550M+ from investors including General Catalyst, Lightspeed, D1 Capital, CPMG, and the family offices of the founders of Stripe, DoorDash, and Ramp.
About the Role
Members of Technical Staff (MTS) are the senior engineers who build the platform that everything else at Beacon runs on. You will own a piece of the core stack end-to-end: design, implementation, operations, and the long-term technical direction of that area. This is a Staff Engineer role in everything but name. We run flat.
The work is systems engineering at its core. Multi-tenant data infrastructure across very different portcos. Event-driven pipelines that have to be correct under partial failure. Service architectures that have to stay simple as the product surface grows. APIs and SDKs that other engineers — including FDEs out in the field — will build on every day. ML and agentic systems are part of the stack. They sit on top of a foundation that has to be solid first.
This is not infrastructure for its own sake. The platform has to be solid before anything else at Beacon works. That is the job.
What You'll Do
You will own one of these areas end-to-end:
Data platform. The cross-portco data lake on Iceberg with Snowflake or Databricks as the query engine. Per-portco S3 and KMS isolation. The ingestion pipeline from QuickBooks, HubSpot, Salesforce, PostHog, Intercom, Linear, Slack, Gmail, Postgres, Stripe, Zendesk, and our internal tools. The canonical data model that survives contact with very different portcos. The catalog and semantic layer on top so a query like "show me sales across all portcos" actually resolves.
Core services and APIs. The backend services that everything else at Beacon depends on: identity, access control, audit, workflow orchestration, the internal APIs that FDEs and ops engineers build against. The bar here is not novelty. It is correctness, latency, observability, and the kind of API design that ages well.
Multi-tenant isolation. Per-portco data, compute, and credential boundaries. Cross-cloud (AWS and Azure) connectivity. Regional residency for portcos in regulated verticals. This is the unglamorous infrastructure work that determines whether we can onboard portco 50 as fast as portco 5.
Workflow and action runtime. The execution layer that runs operational workflows across the three domains. Typed action surfaces, idempotency, retries, rollback paths, human-in-the-loop approval gates, audit trails. Some workflows are scripted. Some are model-driven. The runtime treats them as variations of the same primitive.
Observability and evals. The harness that tells us whether the system is working: traces, metrics, structured logs, replay infrastructure, regression suites, the ability to safely A/B-test changes across the portfolio. Both for traditional services and for model-driven workflows.
Safety and blast radius. Wrong actions against a portco's customers, revenue, or product are the worst kind of mistake we can make. Designing the autonomy tiers, the kill switches, the per-action-class blast-radius caps, and the audit surfaces is foundational platform work, not an afterthought.
Who You Are
Senior engineering depth. Staff or principal-equivalent. You have built and operated systems that real businesses depend on. You write clean, idiomatic code in at least one of Python, Go, Rust, or TypeScript, and you can work in any of them. You have an opinion on how to structure a service and you can defend it without raising your voice.
Distributed systems intuition. You have lived through enough production incidents to know where things actually break. Idempotency, partial failure, retry semantics, eventual consistency, schema evolution, multi-tenant isolation. These are not concepts you read about. They are things you have debugged at 2am.
Data infrastructure experience. You have built or operated something non-trivial on a modern data stack: Kafka, Spark, dbt, Iceberg, Snowflake, Databricks, BigQuery, or comparable. You understand the difference between a warehouse and a lake, and when each is the right answer.
Platform mindset. You build for the engineer two seats over as much as for the end user. Your APIs are easy to use correctly and hard to use incorrectly. You write the documentation. You make the migration path obvious. You treat developer experience as a feature, not a chore.
Comfortable with ambiguity. The product surface and the scope of the platform are still being defined. You will be making decisions in week 1 that constrain what is possible in year 3. You need to be the kind of engineer who is energized by that, not paralyzed by it.
Interest in modern ML, not necessarily expertise. You do not need to be an ML researcher. You need to be the kind of engineer who can read a paper, build the infrastructure around a model someone else trained, and have an informed opinion on where ML belongs in the stack and where it does not. If you have shipped LLM-driven systems in production, that is a plus, not a requirement.
Bonus Points
Prior Staff or Principal Engineer experience at a high-bar engineering org.
Experience with Iceberg, Polaris, Snowflake, or Databricks at scale.
Multi-tenant SaaS or platform infrastructure background.
Production experience with LLM-driven systems, including evals and observability.
Background in offline RL, contextual bandits, or sequential decision-making (for the applied research workstreams).
Open-source contributions to data infrastructure, observability, or developer tooling projects.
Our Values at Beacon Software
: We acknowledge that the path to getting to the right answer involves being wrong along the way. We have strong beliefs which are weakly held. We actively seek new ideas and believe we can learn from anyone at any time.
: We are truth seeking in our approach to business problems. Business is a repeat game and we believe that human relationships generate alpha. We understand that trust is earned over a lifetime and can be lost in an instant.
: We play to win. We hold ourselves to high standards and will not be outworked. We take pride in having a deep sense of responsibility to ourselves, each other, our partners, and our customers. We believe to whom much is given much is expected.
: We seek to build a generational software company. This will take decades. We manage our expectations and those of our partners to take advantage of the 8th wonder of the world - compounding growth.
How We Use AI in Our Hiring Process: To ensure transparency, we want candidates to know that Beacon Software uses Artificial Intelligence and AI-enabled tools to assist with screening, reviewing, organizing and highlighting profiles and applications that match the key requirements for each role.
AI does not make hiring decisions: Every application is reviewed by a member of our team, and all decisions throughout the process are made by humans. We use AI to support efficiency and consistency, not to replace human judgment. We are committed to a fair, thoughtful, and equitable experience for every candidate.
Listed by Beacon Software for a position based in the United States. Employers on this board attest they are hiring domestically.
BEACON SOFTWARE
Forward Deployed Engineer
Location
New York, NY
Employment Type
Full time
Location Type
On-site
Department
Engineering
Overview
Application
About Beacon Software
Beacon is acquiring and operating a portfolio of vertical SaaS companies. Most private equity firms scale by adding people. We are building Beacon to scale by adding software. The thesis is simple: portfolio operations, value creation, and deal sourcing are bottlenecked by human attention, and an agentic operating system can lift that ceiling by an order of magnitude.
We are building that system. It has two pieces. A sensing layer is a cross-portfolio data lake on open table formats with a feature store on top that makes the data agent-readable. An action layer runs workflows across three domains: how we run the portfolio, how we grow the portfolio, and how we acquire into it. Underneath both sits a feedback loop that captures every action and outcome with stable identifiers.
Beacon has raised $550M+ from investors including General Catalyst, Lightspeed, D1 Capital, CPMG, and the family offices of the founders of Stripe, DoorDash, and Ramp.
About the Role
Forward Deployed Engineers (FDEs) are the engineers who go where the work is. You will be embedded with one or two portfolio companies at a time — sitting with the GM, the operators, and the customer success lead — figuring out where the leverage is, and shipping agentic software directly into their operation. The platforms exist. You are the person who turns them into outcomes on a specific business.
This is a Palantir-style FDE role applied to private equity operations. You will spend a meaningful fraction of your time on-site or in the portco’s tools, and the rest of your time back at Beacon HQ pulling the patterns you learned back into the platform. The best FDEs at Beacon will not just deliver for the portcos they are deployed at — they will compress what they learned into reusable playbooks that ship to every other portco in the same vertical.
This is not a consulting role. We ship software, not slides. The deliverable is a running system.
What You'll Do
Embed deeply with portcos. Spend the first few weeks at a new portco understanding the operating model from the inside: what the GM cares about, where revenue actually comes from, where the team’s time goes, where the system is leaking. Earn the trust of the operators before you start changing things.
Find the leverage. Identify the 2–3 workflows where agentic software will meaningfully change the trajectory of the business — churn-save, pricing experiments, lead enrichment, support deflection, AR follow-up, bug-fix PRs, weekly pulse, whatever the specific portco needs. Pick the wedge, not the wish list.
Ship the wedge. Build the integrations, the prompts, the evals, the workflows, and the UI surfaces required to land the first agentic loop at that portco. Use the platforms our core engineering team is building, and extend them when they fall short.
Operate the loop. Stay close to the system after it ships. Watch the outcomes. Tune the prompts. Adjust the autonomy tier as the system earns trust. Hand off cleanly to portfolio ops once the loop is stable.
Compound the learnings. Bring the patterns back to HQ. Codify what worked into playbooks that ship to every other portco in the vertical. The 11th deployment in a home-services SaaS should be 10x faster than the 1st, and that compression is your job as much as the engineers building the platform.
Carry the GM relationship. You are the technical face of Beacon to the portco GM. Build the trust, set the expectations, and make sure the GM sees the system as their leverage — not Beacon’s audit tool.
Who You Are
A strong generalist engineer. You can ship full-stack TypeScript or Python on the backend, React on the frontend, SQL fluently, comfortable in someone else’s codebase within a day. You do not need to be a specialist in any one stack. You need to be the person who can land the whole thing.
Customer-obsessed. You like being in the room with the operator, the GM, the customer success lead. You take the problem they actually have, not the problem they described. You are not interested in building platforms that no one uses.
High autonomy, low ego. You will be the only Beacon engineer on the ground at a portco most of the time. You need to make calls without a committee, defend them when challenged, and change your mind when you are wrong.
Comfortable with LLM-native engineering. You have shipped real software using foundation models — not toy demos. You know how to write evals, when to fine-tune, how to keep an agentic workflow from going off the rails, and where the autonomy tier should sit for any given action class.
Operator instincts. You can read a P&L. You understand why a churn-save matters more than a feature launch this quarter. You know that a 5-point improvement in support deflection is worth more than a 50-point improvement in code-review velocity, depending on the business.
Strong written communicator. Beacon runs on writing. You will write the wedge memo, the GM update, the post-deployment retro, the playbook that ships to every other portco. If your writing is fuzzy, the system stays fuzzy.
Bonus Points
Prior FDE experience
PE, consulting, or M&A diligence exposure, particularly the post-LOI integration cadence
Comfort with Iceberg-based data platforms (Snowflake, Databricks) and event-driven systems
Built or operated agentic systems in production, including evals, autonomy gating, and outcome tracking
Our Values at Beacon Software
Humility: We acknowledge that the path to getting to the right answer involves being wrong along the way. We have strong beliefs which are weakly held. We actively seek new ideas and believe we can learn from anyone at any time.
Honesty: We are truth seeking in our approach to business problems. Business is a repeat game and we believe that human relationships generate alpha. We understand that trust is earned over a lifetime and can be lost in an instant.
Hunger: We play to win. We hold ourselves to high standards and will not be outworked. We take pride in having a deep sense of responsibility to ourselves, each other, our partners, and our customers. We believe to whom much is given much is expected.
Horizon: We seek to build a generational software company. This will take decades. We manage our expectations and those of our partners to take advantage of the 8th wonder of the world - compounding growth.
How We Use AI in Our Hiring Process: To ensure transparency, we want candidates to know that Beacon Software uses Artificial Intelligence and AI-enabled tools to assist with screening, reviewing, organizing and highlighting profiles and applications that match the key requirements for each role.
AI does not make hiring decisions: Every application is reviewed by a member of our team, and all decisions throughout the process are made by humans. We use AI to support efficiency and consistency, not to replace human judgment. We are committed to a fair, thoughtful, and equitable experience for every candidate.
Apply for this Job
Powered by
Privacy PolicySecurityVulnerability Disclosure
Listed by Beacon Software for a position based in the United States. Employers on this board attest they are hiring domestically.
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