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Sr. Engineering Manager

Job in Washington, District of Columbia, 20001, USA
Listing for: Finite State
Full Time position
Listed on 2026-08-05
Job specializations:
  • Software Development
    DevOps, Software Project Mgr/ Lead, AI Engineer (Applied/Software), Software Architect
Job Description & How to Apply Below

Sr. Engineering Manager

We are seeking an Engineering Manager to lead and grow high-performing teams while redefining how modern, AI-native engineering organizations build and ship software.

This role is for a leader who has managed teams of 5–15+ engineers and is passionate about building systems where quality is enforced, measured, and continuously improved through automation, observability, and AI-driven workflows.

You will be responsible for driving execution, scaling teams, and embedding AI-powered development and testing practices into every stage of the SDLC. Delivering consistently high-quality, production-grade software is a key requirement of this role.

Team Leadership & Execution

  • Lead, mentor, and grow a team (or teams) of 5–15+ engineers
  • Drive delivery of software that meets strict, measurable standards for quality, reliability, and maintainability
  • Establish clear expectations where quality is owned by the team and enforced through systems, not heroics
  • Foster a culture of accountability, continuous improvement, and engineering excellence

Customer Impact & Product Excellence

  • Ensure engineering decisions are grounded in customer outcomes and product impact
  • Partner closely with Product Management to translate customer needs into scalable, high-quality systems
  • Define and track metrics connecting engineering output to customer satisfaction, product adoption, and business outcomes
  • Balance speed, quality, and innovation in service of real-world user value

AI-Native Quality & Testing Systems

  • Define and implement AI-driven quality strategies across your teams
  • Build and operationalize automated and autonomous testing systems, including AI-generated test cases (unit, integration, end-to-end), self-healing test suites, and agent-assisted validation
  • Leverage LLMs and agent-based systems to continuously expand test coverage, identify edge cases, and reduce manual QA effort while increasing confidence
  • Ensure quality is continuously validated in CI/CD, not deferred to later stages

Process, Tooling & Observability

  • Design and enforce engineering processes where quality gates are automated and non-bypassable
  • Implement AI-powered tooling across the SDLC: code generation and review assistants, automated code quality and security analysis, and intelligent CI/CD pipelines with adaptive testing
  • Establish comprehensive observability including logging, metrics, tracing, alerting, and SLOs/SLIs aligned with customer expectations
  • Use production data to detect issues early, predict and prevent failures, and drive continuous evidence-based improvement
  • Track and improve key engineering metrics: test coverage, mutation testing scores, defect rates, production incident frequency, and service reliability

AI-Native Engineering Practices

  • Define and implement AI-first development workflows across your teams
  • Evaluate and integrate modern AI tooling (copilots, LLMs, agent-based systems)
  • Ensure AI adoption increases both velocity and quality
  • Stay current with emerging AI capabilities and translate them into practical engineering improvements

Technical Strategy & Execution

  • Contribute to and execute the technical roadmap in alignment with business objectives
  • Balance innovation (AI-first approaches) with long-term maintainability
  • Manage technical debt strategically to ensure sustainable velocity and system health
  • Guide architectural decisions that enable scale, reliability, and agility

What We're Looking For

Required Experience

  • 5+ years of software engineering experience
  • 3+ years of engineering management experience leading teams of 5–15+ engineers
  • Proven track record of delivering high-quality, production-grade systems with measurable outcomes
  • Experience defining and enforcing quality standards through automation and systems, not manual processes
  • Experience partnering with Product Management to deliver customer-focused solutions

Our Tech Stack

  • Languages:

    Type Script, JavaScript, Python
  • Frontend:
    Next.js, React
  • Backend / Platform:
    Supabase (PostgreSQL, Auth, Edge Functions, Storage), Node/Type Script services
  • Data:
    PostgreSQL (Supabase + AWS RDS during migration), Redis
  • Auth & Security:
    Supabase Auth, OAuth2/OIDC, Git Hub, Trivy, Snyk
  • Infrastructure: AWS, Docker, Kubernetes (for supporting services), modern CI/CD
  • AI Tools:
    Cursor, Devin, Git Hub Copilot, and modern agent frameworks where appropriate

AI-Native Mindset

  • Hands-on experience with AI-powered developer tools and workflows (e.g., Cursor, Claude, Codex, or similar)
  • Strong understanding of how to apply LLMs and agent-based systems to code generation, testing and validation, and developer productivity
  • Ability to evaluate emerging AI technologies pragmatically and integrate them into real-world systems

Quality, Observability & Systems Thinking

  • Deep understanding of modern testing strategies and quality engineering
  • Experience building or scaling automated testing frameworks, CI/CD pipelines with enforced quality gates, and observability systems (metrics, logging, tracing, alerting)
  • Experience defining and operating against SLOs/SLIs,…
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