Machine Learning Engineer

latent· Engineering
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📍 San FranciscoFullTime

About this role

Machine Learning Engineer

About Latent Health

Healthcare today is only truly personalized for two groups: those with wealth and access, and those with physicians in their immediate family.

For everyone else, care is fragmented and impersonal.

Medical history is scattered across systems that don’t communicate. Physicians have minutes to understand decades of context. And when something goes wrong, patients are left with tools that understand medicine broadly—but not the individual.

We believe this can be fundamentally rebuilt.

At Latent Health, we are building systems that understand both:

  • the population (clinical knowledge at scale)

  • and the individual (longitudinal patient history)

Our models are designed to answer complex clinical questions with patient-specific context and verifiable reasoning.

Our dataset represents one of the most clinically diverse populations in the United States, including patients with chronic illness and complex disease. Each patient record contains extraordinary depth.

ML at Latent Health

The Machine Learning team is responsible for building systems that run in real clinical workflows.

We work on:

  • Verifiable reinforcement learning at scale

  • Mid-training and post-training of foundation models

  • Novel objectives derived from longitudinal patient data

We are a small group of researchers and engineers focused on pushing the frontier while shipping real systems into production.

We are a small team and expect engineers to take ownership of critical systems, not components.

The Role

As a Machine Learning Engineer, you will own the design, development, and operation of production-grade ML systems that run in real clinical workflows.

You will drive systems from ambiguous problem definition through to reliable production deployment, setting technical direction along the way.

We are primarily hiring for senior and staff-level engineers who are comfortable owning critical systems end-to-end.

This role involves owning systems that directly impact real patient outcomes.

What You’ll Do

  • Own end-to-end ML systems, including architecture, data, modeling, evaluation, and production infrastructure

  • Train and fine-tune large language models (LLMs) for:

    • Clinical reasoning

    • Medical question answering

    • Evidence-grounded generation

  • Make and own tradeoffs across accuracy, latency, cost, and safety in high-stakes production environments

  • Develop evaluation frameworks to ensure model safety and clinical validity

  • Integrate ML systems into product workflows and patient-facing applications

  • Monitor system performance in production and iterate based on real-world usage and feedback

  • Define what “correct” means in ambiguous clinical workflows in collaboration with engineers and clinicians

What We’re Looking For

  • Strong foundation in machine learning and software engineering

  • Track record of building and owning ML systems in production where performance, reliability, or correctness materially mattered

  • Experience driving ambiguous ML problems from 0→1, including problem formulation, model design, and productionization

  • Hands-on experience with PyTorch or similar frameworks

  • Ability to operate independently in high-ambiguity environments with minimal guidance

  • Strong product and engineering judgment — you know when to use ML, when not to, and how to scope problems accordingly

  • Comfort working in a fast-moving, early-stage environment

  • Experience working on systems where decisions have real-world consequences (e.g., healthcare, finance, infrastructure)

Nice to Have

  • Experience deploying LLMs in production environments

  • Experience building distributed systems or large-scale data pipelines

  • Experience working with clinical, biomedical, or other regulated datasets

Why Join Latent Health

  • Work on high-stakes problems with real impact on patient care

  • Build systems that define how AI is trusted in clinical decision-making

  • Significant ownership in a small, high-caliber team

  • Competitive compensation and meaningful equity

Location

We are based in San Francisco and work together in person.

We spend most of the week in the office and prioritize candidates who are excited to work this way.

Compensation

  • Base salary: $225,000 – $300,000+

  • Meaningful equity in an early-stage, Series A company

Closing

If you’re interested in building systems that bring truly personalized healthcare to millions of patients, we’d love to talk.

Frequently Asked Questions

Is the salary disclosed for the Machine Learning Engineer position at latent?
The salary for this Machine Learning Engineer role at latent is not publicly listed. Click "Apply Now" to learn more about the compensation package on their official careers page.
Where is the Machine Learning Engineer position at latent located?
This Machine Learning Engineer role at latent is based in San Francisco. The position is listed as on-site or hybrid. Check the full job description or apply directly to confirm the work arrangement.
Is the Machine Learning Engineer role at latent full-time or part-time?
This is listed as a FullTime position. It is posted as a Machine Learning Engineer role in the Engineering department at latent.
Which team or department does the Machine Learning Engineer at latent belong to?
This Machine Learning Engineer position is part of the Engineering department at latent. See the full job description for more information about the team structure and responsibilities.
How do I apply for the Machine Learning Engineer position at latent?
Click the "Apply Now" button on this page. You will be redirected to latent's official application portal hosted on ashby where you can submit your application directly.
When was the Machine Learning Engineer job at latent posted?
This Machine Learning Engineer position at latent was posted on Apr 13, 2026. Apply as soon as possible — early applications are often reviewed first.
Machine Learning Engineer
latent
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