Senior Principal Machine Learning Engineer

Cotiviti

United States

Remote

USD 250,000 - 280,000

Full time

14 days+

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Benefits offered by this job

Discretionary bonus
Comprehensive benefits

Job summary

Cotiviti is seeking a Senior Principal Machine Learning Engineer to lead end-to-end ML/AI systems across claims, medical records, and member data to improve payment accuracy and quality outcomes. You will define technical strategy, own evaluation frameworks, and drive auditable, scalable solutions across multiple teams.

This role requires system-wide thinking, mentorship of senior engineers, and collaboration with product, clinical, and analytics.

Qualifications

  • PhD in quantitative field (CS/Engineering/Statistics) with focus on ML/AI.
  • 12+ years of industry experience building production ML systems at scale.
  • Deep expertise in two or more areas: LLM eval, RAG, ranking, or large-scale classification.
  • Proven track record leading end-to-end ML projects with measurable impact.
  • Strong experimentation discipline: A/B testing, causal inference, metrics.
  • Proficiency in Python (PyTorch), SQL at scale, and Airflow.
  • Ability to drive cross-functional alignment across teams.

Responsibilities

  • Define end-to-end AI/LLM system architecture for claims and clinical data.
  • Build evaluation frameworks and online/offline metrics.
  • Lead data flywheel with clinician reviews for labeled data.
  • Develop patient-level digital twins for unified processing across payment, risk and quality.
  • Rank and surface high-value claims for human review.
  • Partner with engineering, product, analytics for rollout.
  • Mentor engineers and raise standards in ML craftsmanship.

Skills

LLM evaluation
RAG pipelines
Ranking
Large-scale classification
A/B testing
Causal inference
Metric design
Opportunity mining
Cross-functional alignment
Healthcare data familiarity
LLM ecosystem

Education

PhD in quantitative discipline

Tools

Python (PyTorch)
SQL at scale (Presto/Trino/Spark)
Airflow

Job description

Senior Principal Machine Learning Engineer

Job Locations: US-Remote

Job ID: 2026-19559

Overview

We are looking for a Senior Principal Machine Learning Engineer to lead the design and delivery of end-to-end ML/AI systems that turn vast volumes of claims, clinical, and member data into measurable performance and reduced waste. You will define technical strategy, drive cross‑functional alignment, and own systems that directly shape payment accuracy, risk adjustment, and quality outcomes for the payers we serve. This role sits at the intersection of applied research and production engineering, translating ambiguous, high‑stakes problems into scalable, auditable ML solutions.

The ideal candidate has operated at large scope across multiple teams and product surfaces – not just shipped models, but defined the problem, built the evaluation infrastructure, created the data flywheel, and drove measurable business outcomes. They think in systems, write crisp design docs, bring intellectual honesty to experimentation, and treat auditability and precision as first‑class requirements rather than afterthoughts. They raise the level of the engineers around them.

Responsibilities
  • Define system architecture for AI/LLM‑powered products end to end over claims, medical records, and clinical documentation.
  • Build and own evaluation frameworks (LLM‑as‑a‑Judge, offline metrics, online experiments) aligned to accuracy, auditability, and clinical and regulatory risk.
  • Drive the data flywheel: convert expert clinician and auditor review decisions into high‑quality labeled data, and close the loop with fine‑tuning of models to lift detection precision.
  • Explore building patient‑level digital twins from clinical charts for unified processing layer and data presentation across payment, risk and quality.
  • Lead ranking and prioritization systems that surface the highest‑value claims, audits, and care gaps for human review, improving both reviewer efficiency and financial impact.
  • Establish reusable platform patterns – shared context stores, evaluation harnesses, feature pipelines – that compound value across product surfaces and lines of business.
  • Partner across engineering, product, clinical, and analytics teams to align on success criteria, roadmap priorities, and production rollout.
  • Mentor senior engineers and elevate organization‑wide standards in ML craftsmanship, experimentation rigor, and system design.
  • Set company‑wide standards.
  • Act as a thought leader beyond Cotiviti to elevate the reputation and visibility of Cotiviti in the industry.
  • Influence the enterprise AI/ML strategy at an executive level.
  • Complete all responsibilities as outlined in the annual performance review and/or goal setting.
  • Complete all special projects and other duties as assigned.
  • Must be able to perform duties with or without reasonable accommodation.

This job description is intended to describe the general nature and level of work being performed and is not to be construed as an exhaustive list of responsibilities, duties and skills required. This job description does not constitute an employment agreement and is subject to change as the needs of Cotiviti and requirements of the job change.

Qualifications
Required
  • PhD in a quantitative discipline such as Computer Science/Engineering, Statistics, Operations Research covering Advanced Statistics, Machine learning and AI.
  • 12+ years of industry experience building production ML systems at scale.
  • Deep expertise in two or more of: LLM evaluation, retrieval‑augmented generation (RAG), ranking, or large‑scale classification.
  • Proven track record leading end‑to‑end ML projects, from problem framing through production impact.
  • Strong experimentation discipline: A/B testing, causal inference, metric design, and opportunity mining.
  • Proficiency in Python (PyTorch), SQL at scale (Presto / Trino / Spark), and distributed pipeline tooling (Airflow).
  • Demonstrated ability to drive cross‑functional alignment across engineering, product, and analytics.
Highly valued
  • Experience building LLM‑as‑a‑Judge evaluation pipelines aligned to quality, risk, and accuracy criteria.
  • Hands‑on supervised fine‑tuning of embedding or reranking models with measurable production gains.
  • Experience with healthcare data (claims, electronic health records, or clinical coding such as ICD, CPT, or HCC).
  • Background designing ML systems in regulated, auditable, or high‑stakes domains (healthcare, finance, or fraud, waste, and abuse detection).
  • Familiarity with building systems that handle sensitive data under frameworks such as HIPAA.
  • Background building canonical data services or platform‑level ML infrastructure adopted organization‑wide.
  • Applied mathematics, statistics, or quantitative PhD background.
  • LLM ecosystem: RAG pipelines, LLM‑as‑a‑Judge evaluation, prompt engineering, supervised fine‑tuning.
Cognitive / Mental Requirements
  • Communicating with others to exchange information.
  • Problem‑solving and thinking critically.
  • Completing tasks independently.
  • Interpreting data.
  • Making timely decisions in the context of a workflow.
Working Conditions and Physical Requirements
  • Must be able to provide a dedicated, secure work area.
  • Must be able to provide high‑speed internet access / connectivity and office setup and maintenance.
Pay Transparency

Base compensation ranges from $250,000 to $280,000 per year. Specific offers are determined by various factors, such as experience, education, skills, certifications, and other business needs. This role is eligible for discretionary bonus consideration.

Cotiviti offers team members a competitive benefits package to address a wide range of personal and family needs, including medical, dental, vision, disability, and life insurance coverage, 401(k) savings plans, paid family leave, 9 paid holidays per year, and 17-27 days of Paid Time Off (PTO) per year, depending on specific level and length of service with Cotiviti. For information about our Careers page, please refer to our Careers page.

Since this job will be based remotely, all interviews will be conducted virtually.

Date of posting: 7/6/2026

Applications are assessed on a rolling basis. We anticipate that the application window will close on 10/6/2026, but the application window may change depending on the volume of applications received or close immediately if a qualified candidate is selected.

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