Senior Data Scientist

Posted Yesterday
Hiring Remotely in US
Remote
Senior level
Healthtech • Information Technology • Consulting
The Role
Designs AI risk stratification and evaluation methodologies for Veterans Health Administration systems, assessing performance, fairness, value, and post-deployment monitoring. Provides technical guidance on machine learning, healthcare data models, cohorts, synthetic data, and pilot evaluations. Develops risk management materials and supports governance decisions through quantitative analysis. Requires extensive applied data science experience, advanced education, and expertise in healthcare-focused machine learning.
Summary Generated by Built In
Job Summary

Aptive Resources is seeking a Senior Data Scientist with a degree in statistics, mathematics, computer science, or a related discipline and demonstrated experience applying machine learning technologies to healthcare data. In this role you will do the analytic work behind VHA’s AI oversight decisions, building the methodology that assigns risk levels to AI systems across the enterprise, evaluating whether deployed AI is delivering the benefit it promised, and providing technical consultation to field teams building AI solutions for Veteran care. This senior level, full-time position is remote. This is a contingent hire position.

Primary Responsibilities
  • Design and execute the AI risk stratification pilot, developing and evaluating a new methodology for assigning risk levels to AI systems across the VHA enterprise.
  • Design evaluation methodology for deployed AI systems, covering model performance, bias and fairness, construct validity, and post-deployment monitoring.
  • Build and validate preregistered cost-benefit formulations that let VHA demonstrate concrete, measurable value from deployed AI systems.
  • Provide technical consultation to five field pilot partnerships on model selection, data readiness, cohort construction, and evaluation design.
  • Conduct the quantitative assessment of pilot outcomes supporting the program evaluation deliverable.
  • Support AI oversight evaluations with analytic evidence, participating in working sessions with VHA governance entities at a cadence of at least one session every other month.
  • Contribute analytic content to AI risk management playbooks, assessment guides, and training materials for use case owners and oversight personnel.
  • Assess a variety of AI/ML solution approaches such as supervised, unsupervised, and reinforcing learning against specific VHA use cases and constraints.
  • Develop and analyze data models and cohorts specific to the healthcare field, and advise on data quality, cohort definition, and synthetic data approaches for AI development in a protected health information environment.
Minimum Qualifications
  • Years of experience: 8 years minimum of applied data science experience. Preferred: ten or more years, including five or more designing and evaluating machine learning models on health or health-adjacent data.
  • Required experience: Previous experience applying various machine learning technologies including supervised, unsupervised, and reinforcing learning techniques. Previous experience working with cloud-based analytic environments. Previous experience working with synthetic data models and cohorts. Previous experience developing and analyzing data models and cohorts specific to the healthcare field.
  • Degree: Master’s degree in Statistics, Mathematics, Computer Science, Data Science, or a related field. PhD preferred.
  • Licensure/certifications: None required.
  • Work location: Remote. Work is performed at the contractor’s site and no travel is anticipated.
  • Clearance: None required. Must be able to obtain and maintain a favorably adjudicated Tier 1 / National Agency Check with Written Inquiries (NACI) background investigation in accordance with VA Handbook 0710. Must complete VA Privacy and Information Security Awareness and Rules of Behavior training (TMS #10176) prior to system access and annually thereafter.
  • Citizenship: Must be authorized to work in the United States. All work must be performed within a jurisdiction subject to the law of the United States or its territories.
Desired Qualifications
  • Demonstrated command of supervised, unsupervised, and reinforcing learning techniques and of when each is and is not appropriate.
  • Experience working in cloud-based analytic environments and with synthetic data models and cohorts.
  • Experience developing and analyzing data models and cohorts specific to the healthcare field.
  • Familiarity with healthcare operations and clinical workflow, and the ability to reason about how a model behaves once it meets one.
  • Experience with VA data sources such as Corporate Data Warehouse, VistA, MedSAS, Patient Treatment File strongly preferred.
  • Experience developing risk stratification or cost-benefit methodologies for a decision-making body.
  • Fluency in Python and/or R and modern ML tooling.
  • Peer-reviewed publication record in health AI or clinical informatics valued.
  • Experience evaluating third-party or vendor AI solutions on behalf of a purchasing organization.
  • Ability to get up to speed quickly on complex issues; desire to work in a fast-paced, rapidly evolving environment.
  • Capable self-starter with a drive to get all types of work done and high attention to detail.
  • Outstanding written and verbal communications skills.
  • Knowledge of military and Veteran populations.
About Aptive

About Aptive. Aptive partners with federal agencies to achieve their missions through improved performance, streamlined operations and enhanced service delivery. Based in Alexandria, Virginia, we support more than a dozen agencies including Veterans Affairs, Transportation, Defense, Homeland Security and the National Science Foundation. We specialize in applying technology, creativity and human-centered services to optimize mission delivery and improve experiences for millions of people who count on government services every day. Founded: 2012. Employees: 300+ nationwide.

EEO Statement

Aptive is an equal opportunity employer. We consider all qualified applicants for employment without regard to race, color, national origin, religion, creed, sex, sexual orientation, gender identity, marital status, parental status, veteran status, age, disability, or any other protected class. Veterans, members of the Reserve and National Guard, and transitioning active-duty service members are highly encouraged to apply. About Aptive: Aptive partners with federal agencies to achieve their missions through improved performance, streamlined operations and enhanced service delivery. Based in Alexandria, Virginia, we support more than a dozen agencies including Veterans Affairs, Transportation, Defense, Homeland Security and the National Science Foundation. We specialize in applying technology, creativity and human-centered services to optimize mission delivery and improve experiences for millions of people who count on government services every day. Founded: 2012. Employees: 300+ nationwide.

Skills Required

  • At least 8 years of applied data science experience
  • Experience applying supervised, unsupervised, and reinforcement learning techniques
  • Experience working with cloud-based analytic environments
  • Experience working with synthetic data models and cohorts
  • Experience developing and analyzing healthcare-specific data models and cohorts
  • Master's degree in Statistics, Mathematics, Computer Science, Data Science, or a related field
  • PhD in a related field
  • Ability to obtain and maintain a favorably adjudicated Tier 1/NACI background investigation
  • Completion of VA Privacy and Information Security Awareness and Rules of Behavior training
  • Authorization to work in the United States
  • Experience designing and evaluating machine learning models on health or health-adjacent data
  • Experience with VA data sources including Corporate Data Warehouse, VistA, MedSAS, or Patient Treatment File
  • Experience developing risk stratification or cost-benefit methodologies
  • Fluency in Python and/or R and modern machine learning tooling
  • Peer-reviewed publication record in health AI or clinical informatics
  • Experience evaluating third-party or vendor AI solutions
  • Familiarity with healthcare operations and clinical workflows
  • Knowledge of military and Veteran populations
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The Company
HQ: Alexandria, VA
349 Employees
Year Founded: 2012

What We Do

Led by CEO Rachele Cooper, a Navy Veteran and aerospace engineer, Aptive is a trusted partner and consulting services provider for federal organizations seeking to accomplish strategic transformations, improve performance and leverage modern technology. Aptive is an ISO 9001:2015 and CMMI L3 certified business and has supported the federal government for more than a decade across a range of high-profile programs. We provide our clients with program and project management, strategy, analysis, integration and implementation across an array of services, including: *Health Care Innovation *Digital and Technology Solutions *Strategic Communications and Marketing Aptive is a Service Disabled Veteran Owned Small Business (SDVOSB) and Woman Owned Small Business (WOSB) headquartered in Alexandria, Virginia. ∙ 2021 Top Workplace (The Washington Post) ∙ 2021 Best Places to Work in Virginia (Virginia Business) ∙ 2020 Small Business Government Contractor of the Year (Northern Virginia Chamber of Commerce) ∙ 2020 Best Places to Work (Washington Business Journal) ∙ 2020 Vet100 Honoree – Institute for Veterans and Families

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