Sr. Data Scientist( Python,SQL, PyTorch, Tensorflow)

Somerset StaffingEden Prairie, MN
Remote

About The Position

Optum Payment Integrity Decision Intelligence is seeking a Senior Data Scientist for a sharp, high-impact 6-month contract focused on delivering practical AI/ML solutions that improve efficiency, prioritisation, and medical cost savings within Payment Integrity operations. This is an ideal opportunity for a contractor who enjoys stepping into a well-defined piece of work, moving quickly, and partnering with a mature, collaborative team. You'll work on meaningful problems with modern tooling, including LLMs, RAG, GenAI, predictive modelling, and agentic workflows, in an environment that values autonomy, technical depth, and low-friction delivery.

Requirements

  • Advanced degree in Applied Mathematics, Physics, Computer Science, Statistics, or a related technical field.
  • Proficiency in traditional machine learning and statistical modelling, including regression, classification, sampling design.
  • Strong coding skills in Python, SQL, and related languages.
  • Demonstrated systems-level thinking and a track record of creative problem-solving, including non-standard approaches to complex challenges.
  • Proven experience in transitioning projects from proof-of-concept (PoC) to production, with a focus on scalability, reliability, and performance.

Nice To Haves

  • Knowledge of work with US healthcare data (claims, clinical records, authorization, provider contracts)
  • Proficiency in deep learning frameworks PyTorch, Tensorflow or other
  • Experience with Agentic AI frameworks such as LangChain, LlamaIndex, and other orchestration tools for autonomous agents.
  • Hands-on experience implementing/adapting published academic research into tangible solutions.
  • Ability to understanding emerging prompting strategies/research and evaluate benefits/trade-offs.

Responsibilities

  • Design and deploy intelligent models by applying advanced statistical techniques, traditional machine learning algorithms, deep learning architectures, and modern approaches such as Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), and Agentic AI.
  • Leverage state-of-the-art libraries and frameworks to ensure scalable, production-grade solutions aligned with enterprise deployment standards.
  • Lead cross-functional discovery sessions with Data Scientists and Payment Integrity Operations leadership to translate business challenges into actionable analytical objectives.
  • Drive alignment between statistical rigor and emerging AI capabilities to maximise operational impact.
  • Deliver robust statistical analyses that frame business scenarios with clarity and precision, integrating classical inference methods with generative and agentic reasoning to inform critical decisions and enhance process outcomes.
  • Collaborate with data stewards and engineering teams to curate high-quality datasets for model development.
  • Ensure data integrity and readiness for both traditional predictive modelling and autonomous agent workflows.
  • Develop end-to-end modelling pipelines encompassing sampling design, data and selection of appropriate statistical and AI methodologies.
  • Document processes and results with transparency, supporting reproducibility and auditability across both ML and LLM-based systems.
  • Communicate insights and model outputs effectively to stakeholders, translating complex statistical and AI-driven findings into actionable business narratives.
  • Monitor and refine model performance through continuous evaluation, incorporating feedback loops and adaptive learning mechanisms.
  • Recommend enhancements to algorithms and agentic workflows that unlock new insights and drive measurable improvements.
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