Research Scientist

Latent

$225K — $300K *
Healthcare
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Strong foundation in machine learning or deep learning
  • Proven track record in ML research from idea to validated results
  • Experience in addressing ambiguous research challenges
  • Hands-on proficiency with PyTorch or similar frameworks
  • Ability to work independently in high-ambiguity environments
  • Strong technical judgment in problem design and evaluation
  • Experience in impactful domains like healthcare or finance

Responsibilities

  • Own research initiatives from formulation to evaluation
  • Develop innovative architectures and training methods with patient data
  • Implement reinforcement learning strategies for foundation models
  • Design rigorous evaluation methodologies for model assessment
  • Balance model capability, interpretability, and verifiability
  • Collaborate with clinicians to formulate real-world problems
  • Translate research into deployable ML systems with engineers

Benefits

  • Impactful work on patient care
  • Shape AI's role in clinical decision-making
  • Ownership in a small, skilled team
  • Competitive compensation and equity options
Full Job Description
Research Scientist

The Role

As a Machine Learning Engineer, Research, you will own the design and development of novel modeling approaches that advance state-of-the-art clinical intelligence.

You will drive research from ambiguous problem definition through to validated results and downstream impact, shaping the technical direction of how models learn from longitudinal patient data.

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

This role involves working on problems that directly impact real patient outcomes.

What You'll Do
  • Own research initiatives end-to-end, including problem formulation, experimental design, modeling, and evaluation
  • Develop novel architectures, training methods, and objectives leveraging longitudinal patient data
  • Work on verifiable reinforcement learning, mid-training, and post-training of foundation models
  • Design rigorous evaluation methodologies to assess model reasoning, correctness, and clinical relevance
  • Make and own tradeoffs between model capability, interpretability, and verifiability in high-stakes settings
  • Collaborate with clinicians and engineers to define meaningful problem formulations grounded in real-world workflows
  • Partner with ML engineers to ensure research translates into deployable systems


What We're Looking For
  • Strong foundation in machine learning, deep learning, or a related technical field
  • Track record of driving ML research or novel modeling work from idea to validated results
  • Experience working on ambiguous research problems with limited prior art
  • Hands-on experience with PyTorch or similar frameworks
  • Ability to operate independently in high-ambiguity environments with minimal guidance
  • Strong technical judgment - you can identify meaningful problems, design appropriate approaches, and evaluate results rigorously
  • 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
  • Publications at top-tier ML venues (e.g., NeurIPS, ICML, ICLR)
  • Experience with LLMs, NLP, or sequence modeling
  • Experience with reinforcement learning or alignment methods
  • Experience working with longitudinal or structured data at scale
  • Experience working with clinical, biomedical, or scientific domains


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.

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