Distinguished Engineer, Agentic SDLC & Non‑Linear Productivity

GitLab

United States

On-site

USD 250,000 - 349,000

Full time

37 hours ago
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Benefits offered by this job

Flexible Paid Time Off
Equity Compensation & ESPP
Growth and Development Fund
Parental Leave
Team Member Resource Groups

Job summary

GitLab is seeking a Distinguished Engineer to lead autonomous, agentic SDLC initiatives, validating AI-driven workflows and shaping scalable architecture across product, architecture, and engineering teams.

You will mentor senior engineers, drive cross-functional collaboration, and help codify patterns for production use while ensuring guardrails and governance across multi-tenant environments. This is a senior, remote-ready leadership role in the United States.

Qualifications

  • 10+ years of software engineering experience with leadership in senior roles.
  • Deep expertise in AI/ML systems at production scale.
  • Experience mentoring engineers and leading cross-functional alignment.

Responsibilities

  • Define and continuously refine a company-wide technical vision for autonomous, agentic SDLC.
  • Identify and prioritize productivity opportunities across the SDLC, targeting 10x changes.
  • Translate ambiguous problems into concrete roadmaps with Product, AI/ML, and Architecture teams.
  • Lead hands-on experiments and prototypes to validate agentic workflows in prod-adjacent environments.
  • Design reference architectures for agentic SDLC, including guardrails and observability.
  • Define evaluation frameworks for agentic workflows using offline and online experiments.
  • Own high-impact internal use cases from concept to adoption and measurable productivity gains.
  • Embed agentic workflows into day-to-day development with visibility and resilience.
  • Define core productivity metrics and link interventions to business outcomes.
  • Codify reusable patterns and playbooks for cross-team adoption.
  • Translate internal patterns into customer-facing product capabilities.
  • Ensure designs respect multi-tenant, compliance, and data governance.
  • Escalate complex decisions on agentic workflows and AI safety.
  • Mentor senior engineers and raise the technical bar.
  • Write design documents, architecture narratives, and decision records.
  • Represent GitLab in conferences and industry groups on AI-assisted development.

Skills

10+ years exp
Staff/Principal leadership
AI/ML systems
Hands-on experimentation
Distributed systems
Human-in-the-loop controls
Cross-functional alignment
Mentoring engineers
Remote/asynchronous communication
DevSecOps familiarity

Job description

GitLab is the intelligent orchestration platform for DevSecOps. GitLab enables organizations to increase developer productivity, improve operational efficiency, reduce security and compliance risk, and accelerate digital transformation. More than 50 million registered users and more than 50% of the Fortune 100* trust GitLab to ship better, more secure software faster.

The same principles built into our products are reflected in how our team works: we embrace AI as a core productivity multiplier, with all team members expected to incorporate AI into their daily workflows to drive efficiency, innovation, and impact. GitLab is where careers accelerate, innovation flourishes, and every voice is valued. Our high-performance culture is driven by our values and continuous knowledge exchange, enabling our team members to reach their full potential while collaborating with industry leaders to solve complex problems. Co-create the future with us as we build technology that transforms how the world develops software.

  • Fortune 500® is a registered trademark of Fortune Media IP Limited, used under license. Claim based on GitLab data. Fortune 100 refers to the top 20% ranked companies in the 2025 Fortune 500 list, published in June 2025. Fortune and Fortune Media IP Limited are not affiliated with, and do not endorse products or services of GitLab.
About The Role

We are looking for a Distinguished Engineer to pioneer and scale autonomous, agentic SDLC capabilities across GitLab. Distinguished Engineers are recognized experts across multiple technology domains and represent the most senior level of technical leadership within and across divisions at the company.

In this role you will deeply immerse in GitLab's product and internal engineering workflows to identify classes of problems that can be wholly or largely addressed by AI agents, validate them through rigorous experimentation in production-adjacent environments, and codify patterns that can be productized for our millions of users. You will act as a bridge between Architecture, Product, Infrastructure, and Data and ML teams, ensuring that agentic capabilities deliver durable value internally first and then scale reliably and securely to our customers.

The level for this role will be determined through the interview process and may be scoped as either Distinguished Engineer or Fellow Engineer based on the depth and breadth of experience demonstrated.

What You'll Do
  • Define and continuously refine a company-wide technical vision for autonomous, agentic SDLC that aligns with GitLab's product strategy and Engineering job architecture
  • Identify and prioritize non-linear productivity opportunities across the SDLC, from planning and coding to review, security, compliance, and operations, targeting 10x step changes rather than incremental gains
  • Translate ambiguous problem spaces into concrete, iterable roadmaps in partnership with Product, AI and ML, and Architecture teams
  • Lead hands-on experiments and prototypes to validate where agentic workflows can fully own or materially reshape engineering tasks, including autonomous MR authoring, test creation and triage, security remediation, release readiness, and incident response
  • Design and implement reference architectures for agentic SDLC inside GitLab, including orchestration patterns, safety guardrails, observability, and human-in-the-loop controls
  • Define evaluation frameworks using offline benchmarks and online experiments to measure correctness, latency, safety, cost, and productivity impact of agentic workflows
  • Select and own a small set of high-impact internal use cases as pathfinders and drive them from concept through adoption to measurable productivity gains
  • Work directly with engineering teams to embed agentic workflows into day-to-day development, ensuring they are trusted, observable, and resilient
  • Define and track core productivity metrics such as cycle time, MTTR, and MR throughput, and link agentic interventions to real business outcomes
  • Capture and codify reusable patterns, libraries, and playbooks that other teams can adopt with minimal friction
  • Work with Product Management and Engineering leadership to convert proven internal patterns into product capabilities that can be safely and reliably offered to customers
  • Ensure designs respect multi-tenant, compliance, and data governance requirements across GitLab.com and self-managed customers
  • Serve as a point of escalation for complex technical and architectural decisions related to agentic workflows, AI safety, and large-scale systems integration
  • Mentor Principal and Staff Engineers working on AI and agentic efforts, raising the overall bar for technical execution, experimentation rigor, and cross-team collaboration
  • Write clear, opinionated design documents, architecture narratives, and decision records that help teams make aligned, high-quality decisions independently
  • Represent GitLab in the broader ecosystem at conferences, standards groups, and open source communities on topics such as AI-assisted development, autonomous agents, and productivity measurement
  • Partner with Security and Compliance to define guardrails, review processes, and monitoring for agentic features, ensuring responsible use of AI and protection of customer data
  • Work with Reliability and SRE teams to ensure that agentic services are observable, debuggable, and resilient, and that failure modes degrade gracefully
What You'll Bring
  • 10+ years of software engineering experience, including 4+ years in a Staff, Principal, or equivalent senior technical leadership role
  • Deep expertise in AI and ML systems, including large language models, agentic frameworks, and autonomous workflow design at production scale
  • Proven track record of leading hands-on technical experimentation, including defining evaluation frameworks, running benchmarks, and translating findings into scalable architecture decisions
  • Strong background in scalable, multi-tenant distributed systems, including service decomposition, fault tolerance, observability, and operational resilience
  • Experience designing and implementing human-in-the-loop controls, safety guardrails, and responsible AI practices for production systems
  • Demonstrated ability to drive cross-functional alignment across Engineering, Product, Infrastructure, and Data and ML teams on complex, ambiguous technical challenges
  • Experience mentoring senior engineers and influencing technical direction across multiple teams or divisions without direct authority
  • Ability to work effectively in a fully remote, globally distributed organization with excellent written and asynchronous communication skills
  • Familiarity with GitLab's DevSecOps platform, CI/CD primitives, and the software development lifecycle is a strong plus

United States Salary Range

$250,000—$349,000 USD

How GitLab Supports Full-Time Employees
  • Benefits to support your health, finances, and well-being
  • Flexible Paid Time Off
  • Team Member Resource Groups
  • Equity Compensation & Employee Stock Purchase Plan
  • Growth and Development Fund
  • Parental Leave

Please note that we welcome interest from candidates with varying levels of experience; many successful candidates do not meet every single requirement. Additionally, studies have shown that people from underrepresented groups are less likely to apply to a job unless they meet every single qualification.

Country Hiring Guidelines

GitLab hires new team members in countries around the world. All of our roles are remote, however some roles may carry specific location-based eligibility requirements. Our Talent Acquisition team can help answer any questions about location after starting the recruiting process.

Privacy Policy

Please review our Recruitment Privacy Policy. Your privacy is important to us.

GitLab is proud to be an equal opportunity workplace and is an affirmative action employer. GitLab’s policies and practices relating to recruitment, employment, career development and advancement, promotion, and retirement are based solely on merit, regardless of race, color, religion, ancestry, sex (including pregnancy, lactation, sexual orientation, gender identity, or gender expression), national origin, age, citizenship, marital status, mental or physical disability, genetic information (including family medical history), discharge status from the military, protected veteran status (which includes disabled veterans, recently separated veterans, active duty wartime or campaign badge veterans, and Armed Forces service medal veterans), or any other basis protected by law. GitLab will not tolerate discrimination or harassment based on any of these characteristics. See also GitLab’s EEO Policy and EEO is the Law. If you have a disability or special need that requires accommodation, please let us know during the recruiting process.

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