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Member of Technical Staff, Compiler

Role overview

Qualifications

  • Experience working in a frontier AI lab
  • 3+ years of research or industry experience, or a final-year PhD/postdoc
  • Shipped ML/NLP systems to production
  • BS or higher in CS, ML, math, or a related technical field

Responsibilities

  • Build the pipeline — convert clinical standards into executable modules
  • Design the target syntax for representing guideline logic
  • Run the experiments — open vs. closed models, fine-tuning, constrained decoding
  • Co-design benchmarks — datasets, metrics, and error analysis for clinical fidelity

Key facts

  • Remote from: New York (USA)
  • Full time
  • Senior (5-10 years)
  • Technical Support Manager
  • 150 - 300K yearly
  • English

Hard skills

Other skills

  • Research
  • Collaboration

About the company

David Joseph & Company logo

David Joseph & Company

Staffing & Recruiting

David Joseph grew out of the realization that many organizations lack the in-house capacity to pursue and manage public sector clients effectively, despite providing ideal products for government buyers. Unlike private sector buyers, government procurement patterns aren’t driven to maximize revenue, but to implement policies which support citizens. As a result, companies that are familiar with supplying products to profit-driven organizations need separate, dedicated divisions in their organization that will orient themselves towards public sector considerations. This is where David Joseph comes in. David Joseph acts as your dedicated public sector division, allowing you to offload your public sector costs without interrupting your existing operations. Our team is made up of public sector specialists who understand the ins and outs of public sector contracts, from policy objective to contract award. David Joseph understands the process of obtaining and subsequently managing government contracts. Our people are adept at marketing, supplying, and tailoring your company’s products to meet the unique considerations of public sector organizations. Our firm supports organizations of all sizes, even ones that already have a base of existing contracts. It isn't enough for a company to pile up contracts for services with public sector entities. Companies need to understand how to maximize profit from awarded contracts once they get their foot in the door. To do this, they need David Joseph. Public sector contracts can be extremely valuable, and it’s important to recognize how competitive that makes the process for securing them. At David Joseph, we leverage our public sector expertise, and you take the shortcut to public sector success.

Company details

Company typeTPE
IndustryStaffing & Recruiting
Company size2 - 10

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Job description

About the Role

Our client — a physician-founded, venture-backed clinical AI research company (client identity confidential) — is building a system that compiles the standard of care into decision artifacts that execute at the point of care: schema-enforced, verified for exhaustiveness, and traceable to the source evidence that justifies them. Their compiler is live in public health care today, with clinicians acting on its recommendations daily.

This is a research role with production stakes. You will study how far frontier models can be pushed in extracting, structuring, and proving clinical logic, design the experiments that settle what works, and ship the winning approach into a live pipeline. You'll feel at home if you have published in clinical AI, want out of the demo cycle, and believe the logic behind a clinical decision has to be inspectable.

What You'll Do

  • Build the pipeline — convert clinical standards into executable modules: parsing with document and layout models, transformation, and validation.
  • Design the target syntax for representing guideline logic (exclusions, precedence, recommendations).
  • Run the experiments — open vs. closed models, fine-tuning, constrained decoding.
  • Co-design benchmarks — datasets, metrics, and error analysis for clinical fidelity.
  • Build adversarial cases that measure source fidelity, logical completeness, and recommendation correctness.
  • Develop deterministic validators using static analysis, constraint solving, or formal methods to make ambiguity, contradiction, and source silence explicit.
  • Turn model failures into hypotheses, experiments, and better system design.
  • Work directly with the founders and the clinicians who stake their license on the outputs.

Requirements (Must-Have)

  • Experience working in a frontier AI lab.
  • 3+ years of research or industry experience, or a final-year PhD/postdoc.
  • Shipped ML/NLP systems to production — not just research prototypes.
  • BS or higher in CS, ML, math, or a related technical field.
  • Production-level Python, PyTorch, and the Transformers ecosystem.
  • Experience with LLM evaluation, training, or prompt engineering.
  • Able to articulate failed experiments and uncertainty clearly in writing.
  • Willing to attend in-person offsites multiple times per year.
  • Authorized to work in the US or Canada — no visa sponsorship (potential exceptions for current employees of frontier labs).

Nice-to-Have

  • Compilers, program synthesis, formal methods, or static analysis.
  • Healthcare, safety-critical, or highly regulated domain experience.
  • PhD in CS, ML, NLP, formal methods, or statistics.
  • Knowledge of IR design, constraint solving, SAT/SMT, or DSLs.

Details

  • Compensation: USD $150K–$300K (higher possible for exceptional candidates), plus competitive equity (cash/equity mix is flexible).
  • Location: Fully remote, US or Canada, with offsites several times per year.
  • Type: Full-time.
  • Tech stack: Python, PyTorch, Transformers, LLMs, static analysis, SMT/SAT solvers, FHIR, HL7 v2.

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MR

Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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