Resumo da vaga

Engineering Manager, Machine Learning

Requisitos e responsabilidades

Conteúdo da vaga extraído em seções para revisão mais rápida.

In this role you will

  • Set technical direction across the team's full ML surface area — from classical models for clustering, ranking, and anomaly detection to LLM-based and agentic systems — and make sharp calls about which approach fits each problem
  • Define how the team evaluates and monitors ML systems in production, from offline metrics to online experimentation to model and agent observability
  • Stay hands-on enough to review code and model designs, contribute to architecture discussions, and unblock engineers on complex ML problems
  • Define team roadmap and deliverables, scope work, allocate resources, and keep execution on track against ambitious goals
  • Partner with product managers, designers, and engineering leaders across Sentry to identify the highest-impact opportunities for ML in our products
  • Foster career growth for the engineers on your team, and recruit exceptional ML talent as the team scales

You'll love this role if you

  • Have a strong ML engineering background that you use to inform and validate the team's technical decisions, and you're comfortable staying close to the code
  • Are excited to shape how AI and developer tools come together, and want to define how engineers and coding agents collaborate to find and fix problems
  • Are driven by impact and want to lead a team working on high-stakes, high-visibility projects
  • Love building things from the ground up — the ML team is still in its early chapters, and there's plenty of greenfield to shape
  • Thrive in cross-functional environments and enjoy collaborating across product, design, and engineering to ship great work
  • Care deeply about growing the engineers around you and finding opportunities for them to do the best work of their careers

Qualifications

  • 8+ years of professional engineering experience, with significant time spent building and shipping machine learning systems in production
  • 3+ years of engineering management experience, ideally leading ML, AI, or data-focused teams
  • Familiarity with deploying and operating ML models at scale, including evaluation, monitoring, and iteration in production
  • Strong judgment in ambiguous, fast-moving environments
  • Excellent written and verbal communication; comfortable working across product, research, and engineering
  • A research background in machine learning, statistics, or a related field (MS, PhD, or equivalent research experience) is a plus but not a requirement
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