Senior AI Engineer

(united States)Remotesenior
Machine Learning EngineerData
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Quick Summary

Key Responsibilities

prototype a capability, validate it with evals, deploy, monitor, and iterate. Take end-to-end ownership of matching, search, and ranking — model design, offline validation, shadow-scoring,

Technical Tools
Machine Learning EngineerData

Nurses take care of everyone else — our mission is to take care of them — helping healthcare professionals live better lives and find and do their best work. Over one million nurses and 1,500+ hospitals rely on Incredible Health's AI-powered career marketplace, and the intelligence behind it: the matching and search models that decide what every nurse sees, and AI products like Lyn, our AI interview agent.

Alabama, Arizona, California, Colorado, Connecticut, District of Columbia, Florida, Georgia, Idaho, Illinois, Indiana, Iowa, Maryland, Massachusetts, Michigan, Minnesota, Mississippi, Missouri, Nebraska, Nevada, New Jersey, New York, North Carolina, Ohio, Oregon, Pennsylvania, South Carolina, Tennessee, Texas, Utah, Virginia, Washington, West Virginia

Responsibilities

~1 min read
  • →Lead LLM-powered products end to end using the foundation models best suited to the job: prototype a capability, validate it with evals, deploy, monitor, and iterate.
  • →Take end-to-end ownership of matching, search, and ranking — model design, offline validation, shadow-scoring, and A/B experiments — across embeddings and ElasticSearch.
  • →Ship production code across the stack — Python ML services, Rails and React web app — and diagnose whatever breaks: hallucinations, retrieval misses, ranking regressions.
  • →Turn ambiguous questions into production-minded data analysis that changes what we build, and raise the bar through rigorous code review with our ML, AI, and product engineers.
  • 6+ years of software engineering, including 2+ recent years taking ML- and LLM-powered features from concept through deployment and long-term production maintenance.
  • Strong Python software engineering skills — with the depth to independently run, validate, and interpret a ranking-model retrain, an embedding pipeline, or an eval harness.
  • Evaluation for non-deterministic systems: golden datasets, LLM-as-judge, regression tests that gate launches.
  • Core ML foundations — classification, ranking, model evaluation — and the rigor to know what offline metrics predict about real users.
  • Production LLM experience (prompt engineering, tool calling, structured outputs, agent and voice workflows), plus SQL-driven product analysis and the notebook fluency to set up an environment and train or run a model on your own box.
  • Marketplaces or recommendation systems where both sides say yes.
  • Voice agents in production.
  • Embedding retrieval at scale.
  • Claude Code as a daily force multiplier.
  • Confident full-stack contributor.

Above all, we look for ownership and adaptability: product-driven engineers who start from outcomes, work backwards to impact and step up independently to deliver for the team. If startup ethos is your default setting, you'll fit right in.

  • Day 30: Shipped to production across our entire AI product stack. Running our eval suites and core notebooks solo, and already trading substantive PR reviews with our ML engineer.
  • Day 60: Owning a production surface end to end — Lyn's eval loop or the matching retrain cycle — and shipped your first measurable improvement, validated by experiment.
  • Day 90: Led an AI bet from scoping through experiment-validated launch. Operating our production ML services independently and pitching the next quarter's AI roadmap with data behind it.

Anthropic (Claude) · ElevenLabs · Python/FastAPI + Celery · Rails + React · ElasticSearch + embeddings · Snowflake + dbt + Hex · Claude Code everywhere

Requirements

~1 min read

At Incredible Health, the security of our employees and candidates is a priority.

All application information should be submitted securely on https://www.incrediblehealth.com/careers

We will always communicate with you via @incrediblehq.com or @incrediblehealth.com e-mail addresses and will use the email address that you provided in your application. We will not make offers or schedule interviews through LinkedIn InMail or Wire.

We will never request money or sensitive information like bank account information, social security number, or any other non-public information during the application process. We do not charge a fee to process employment applications or require any other form of payment during the recruitment process. You will not be asked to purchase your own company hardware, phone, or phone line during the recruitment process.

If you suspect fraud, please do not respond and report the situation to fraud@incrediblehealth.com. Please include as much information as possible when submitting your report, including a copy of the original email or text you received and any other important information such as email headers, names, company names, e-mail addresses, phone numbers, URLs, and mailing details.


Location & Eligibility

Where is the job
Worldwide
Fully remote, anywhere in the world
Who can apply
Same as job location

Listing Details

First seen
September 26, 2026
Last seen
September 26, 2026

Posting Health

Days active
0
Repost count
0
Trust Level
61%
Scored at
September 26, 2026

Signal breakdown

freshnesssource trustcontent trustemployer trust
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incredible-healthSenior AI Engineer