Sentry
Engineering Manager, Machine Learning
Vaga remota de Engineering com fit claro de localização do candidato.
Publicada18 de mai. de 2026
Países elegíveis1 país aceito
Sinal de senioridadeLead
Modelo de trabalhoRemoto
Locais aceitos para candidatos
Estados Unidos
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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