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Doctronic
New York City, New York, United States; San Francisco, California, United States
Source: Doctronic careers · View original posting
From Doctronic's posting. “We” and “our” refer to the employer.
Senior AI Engineer
New York City or San Francisco | Hybrid Onsite | Full Time
Mission
Let's make high-quality healthcare free and accessible to everyone through AI. Doctronic's AI doctor already handles millions of consultations; our goal is to scale to billions while continuously improving clinical safety and accuracy. That means advancing how AI systems reason, learn, retrieve evidence, and earn trust in real clinical care.
Doctronic runs a real clinical practice, with patients consulting our AI doctor every day. That gives us a dataset no one else has to test ideas against. We're committed to publishing and open sourcing as we go.
You'll build the reasoning systems, learning methods, retrieval algorithms, and evaluation infrastructure that allow every component of Doctronic's clinical AI to improve with each iteration and earn greater autonomy over time.
This role blends research and engineering. What matters is real experimental or modeling work you can also ship, whether you come from applied ML or data science with strong engineering skills, or engineering with a research bent.
Agentic Clinical Reasoning
Design and implement the next generation of the architecture behind Doctronic's AI doctor, including reasoning, reflection, verification, tool use, routing, uncertainty handling, and escalation.
Build systems in which specialized agents and models work together to make clinical decisions safely, reliably, and efficiently, with an architecture that supports self-improvement over time.
Evaluation and Measurement
Build the evaluation platform, rubrics, simulations, and experiments that measure how the AI doctor performs and know when a benchmark score rewards the wrong behavior.
Identify what should be improved, whether reasoning, retrieval, model behavior, data, or engineering, and determine whether each intervention genuinely made the system better.
Models and Learning
Apply methods such as fine-tuning, distillation, reinforcement learning, preference optimization, and prompt and system optimization to improve specific components of the AI doctor.
Build the training data, feedback, reward, and experimentation pipelines that turn evaluation results and clinical expertise into system improvements.
Search, Retrieval, and Grounding
Build search, ranking, retrieval, and grounding algorithms that connect clinical reasoning to trusted medical evidence, partner-specific content, and patient context.
Improve and evaluate retrieval based on its effect on downstream clinical decisions, not only on document-relevance metrics.
Wherever you're working, you'll own the problem end-to-end, from framing it to measuring whether it worked.
How We Work
Builder-first org: senior engineers who take ownership of a problem and run with it
Autonomy here means moving fast on your own judgment and bringing in clinical, product, or engineering partners early when the problem calls for it, not after.
Who You Are
You are a research-minded engineer who wants to build intelligent systems and is equally serious about understanding and demonstrating their effectiveness.
Doctronic is backed by Union Square Ventures, Lightspeed Venture Partners, and Abstract Ventures, with three rounds of financing completed between February 2025 and January 2026.
Doctronic is an equal opportunity employer. We celebrate diversity and are committed to creating an inclusive environment for all employees.
LAYIQ is an independent job-discovery service. This listing does not imply a partnership with or endorsement by the employer. Review the original posting for current details and availability.
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