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Manager, Machine Learning Engineering San Francisco, CA

Job in San Francisco, San Francisco County, California, 94199, USA
Listing for: GoFundMe
Full Time position
Listed on 2026-09-18
Job specializations:
  • Software Development
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
Salary/Wage Range or Industry Benchmark: 219000 - 329000 USD Yearly USD 219000.00 329000.00 YEAR
Job Description & How to Apply Below

Want to help us help others? We’re hiring!

Go Fund Me  is the world’s most powerful community for good, dedicated to helping people help each other. By uniting individuals and nonprofits in one place, Go Fund Me  makes it easy and safe for people to ask for help and support causes – for themselves and each other. Together, our community has raised more than $40 billion since 2010.

Join Go Fund Me  as our next Manager, Machine Learning Engineering (ML and AI Operations). In this role, you will lead the team responsible for the infrastructure, pipelines, and operational rigor that keep Go Fund Me 's machine learning and AI systems reliable, scalable, and safe in production. This role requires strong technical judgment across the ML lifecycle (data → training → online inference → monitoring), a strong understanding of how to enable AI applications to operate safely at scale, and a proven ability to build and lead a high performance team that operates production ML/AI systems with the same rigor as core infrastructure.

Candidates considered for this role will be located in the San Francisco Bay Area. There will be an in-office requirement of 3x a week.

The Job

  • Own the reliability, scalability, and operational health of ML/AI production systems across Go Fund Me , including training pipelines, feature stores, model serving, and monitoring/observability infrastructure.
  • Lead, hire, and grow a team of ML/AI operations engineers, setting technical direction through design reviews, architecture decisions, and shared best practices for production ML and AI systems.
  • Partner with data science and ML engineering teams to streamline the path from model development to production deployment, including CI/CD for ML, model packaging, versioning, and rollback strategies.
  • Establish ML operational excellence org-wide by driving standards for model observability (latency, errors, drift, calibration, business KPI deltas), automated retraining triggers, and incident response playbooks.
  • Build and mature on-call processes, SLOs/SLAs, and postmortem practices for ML/AI systems, treating model incidents with the same discipline as production infrastructure incidents.
  • Drive operational strategy for Go Fund Me 's generative AI systems alongside traditional ML, balancing innovation velocity with safety, compliance, cost, and reliability.
  • Collaborate cross-functionally with Product, Engineering, Design, and Legal/Privacy stakeholders to translate business goals into team priorities and measurable operational outcomes.
  • Manage vendor and platform relationships (e.g., cloud ML platforms, LLM providers) and make build-vs-buy calls that balance cost, control, and speed.
  • Report on team health, system reliability metrics, and operational risk to senior engineering leadership.
  • Employ a diverse set of tools and platforms, including Python, AWS, Databricks, Docker, Kubernetes, Terraform, Snowflake, and Git Hub, to guide your team in developing, deploying, and maintaining scalable and robust machine learning systems.

You

  • 7+ years of hands‑on experience building and shipping production machine learning systems, with demonstrated ownership of backend services and ML pipelines in a high‑availability environment.
  • 1-3+ years of experience directly managing engineers, ideally in an MLOps, ML platform, or infrastructure context, with a track record of hiring and developing strong teams.
  • Strong proficiency in Python and ML libraries/frameworks such as PyTorch, Tensor Flow, Scikit-learn, plus strong software engineering fundamentals (testing, code review, CI/CD, API design, performance, and reliability) — enough depth to stay hands‑on and credible with your team.
  • Experience designing and operating real‑time model serving at scale, including…
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