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Data Scientist; SME - Clearance Required

Job in Tysons, Fairfax County, Virginia, USA
Listing for: LMI Consulting, LLC
Full Time position
Listed on 2026-01-02
Job specializations:
  • IT/Tech
    Data Scientist, Data Analyst
Job Description & How to Apply Below
Position: Data Scientist (SME) - Clearance Required

Data Scientist (SME) – Clearance Required

Job Location s: US-Remote

Overview

LMI seeks a Senior Data Scientist (Subject Matter Expert) to lead analytic model development, readiness scoring methodologies, and multidomain performance analytics for the U.S. Army Center for Initial Military Training’s (CIMT) Holistic Health & Fitness Management System (H2

FMS). H2

FMS is a secure analytics environment hosted in Army Gov Cloud that integrates data from the vendor‑provided H2F data capture application. The Senior Data Scientist will serve as the primary expert responsible for conceptualizing, designing, validating, and implementing advanced analytic models used to assess Soldier and unit readiness across all five H2F domains:
Physical, Nutritional, Mental, Sleep, and Spiritual.

This SME will work closely with Tactical Sports Scientists, Human Performance Specialists, Data Engineers, Cloud and Dev Sec Ops  personnel, UI/UX developers, and the Technical PM to ensure analytic workflows are scientifically sound, doctrinally aligned (FM 7‑22), and operationally meaningful for Army stakeholders.

The role also provides analytic oversight to ensure accurate integration of vendor‑provided H2F data into Army Gov Cloud pipelines and readiness models. LMI is a new breed of digital solutions provider dedicated to accelerating government impact with innovation and speed.

Responsibilities
  • Lead design, development, and validation of advanced analytic models for multidomain Soldier readiness.
  • Establish scientifically and statistically sound methodologies for
    • Readiness scoring and risk indicators
    • Training load and fatigue modeling
    • Injury risk prediction
    • Recovery and resilience analytics
    • Sleep quality, stress, and behavioral readiness metrics
    • Nutrition and energy balance modeling
  • Ensure all models align with FM 7‑22, ACFT standards, and Army H2F governance.
  • Provide SME-level guidance on integrating wearable and sensor‑derived data (HR, HRV, GPS, accelerometry, sleep monitors).
  • Define analytic requirements for transforming raw physiologic and biomechanical data into actionable readiness metrics.
  • Advise Data Engineers on sampling rates, data normalization, smoothing techniques, artifact reduction, and quality checks.
  • Review, validate, and document scientific requirements for integrating vendor‑provided H2F data streams into H2

    FMS.
  • Ensure that data structures support analytic modeling, multidomain assessment, and long‑term scalability.
  • Serve as the SME for assessing analytic implications of changes to upstream vendor applications.
  • Work directly with Data Engineers to translate scientific models into production‑ready pipelines.
  • Partner with the Tactical Sports Scientist to align scientific validity with operational relevance.
  • Collaborate with UI/UX designers to ensure dashboards and visualizations reflect correct analytic logic and interpretability.
  • Participate in Agile ceremonies and milestone planning with the TPM and broader H2

    FMS team.
  • Conduct literature reviews, benchmarking, and best‑practice analysis for model development.
  • Validate analytic outputs through testing, simulation, and statistical analysis.
  • Produce documentation for algorithm design, model assumptions, and analytic workflows to support cATO requirements.
  • Brief analytic findings and readiness models to senior Army stakeholders and CIMT decision‑makers.
  • Support the development of training materials, SOPs, and analytic guides for field practitioners.
  • Translate complex statistical concepts into operationally meaningful language for non‑technical audiences.
Qualifications

Required Qualifications

  • Master’s degree in Data Science, Statistics, Computer Science, Applied Mathematics, Sports Science Analytics, Physiology, or related field.
  • 8+ years of experience designing and implementing advanced analytics or predictive models, preferably in military, sports science, or human performance settings.
  • Demonstrated expertise in predictive modeling, machine learning, statistical inference, physiological or performance modeling, wearable/sensor data analytics.
  • Experience working with multidomain human performance data (physical, nutritional, mental, sleep, spiritual).
  • Ability to collaborate with…
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