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Data Scientist - Clinical Informatics; Analytics Enablement

Job in New York, New York County, New York, 10261, USA
Listing for: Hispanic Alliance for Career Enhancement
Full Time position
Listed on 2026-06-02
Job specializations:
  • IT/Tech
    Data Analyst, Data Security, Data Engineering, Data Warehousing
Salary/Wage Range or Industry Benchmark: 101970 - 203940 USD Yearly USD 101970.00 203940.00 YEAR
Job Description & How to Apply Below
Position: Data Scientist - Clinical Informatics (Analytics Enablement)
Location: New York

Position Summary

We're building a world of health around every individual - shaping a more connected, convenient and compassionate health experience. At CVS Health, you'll be surrounded by passionate colleagues who care deeply, innovate with purpose, hold ourselves accountable and prioritize safety and quality in everything we do. Join us and be part of something bigger – helping to simplify health care one person, one family and one community at a time.

CVS Health's Analytics & Behavior Change (A&BC) team is working to solve some of the most challenging problems at the intersection of technology and healthcare. A&BC leverages advanced analytics, clinical informatics, and hypothesis‑driven approaches to transform data into actionable, customer‑centric insights that drive growth, improve health outcomes, and expand access to healthcare across all CVS Health businesses.

The A&BC organization is looking to grow its Clinical Data Science & AI team. Join us as we embark on an exciting journey to drive a transformational shift in how CVS Health leverages clinical data and analytics to become the leader in consumer healthcare in the U.S.

Responsibilities
  • Serve as a subject matter expert in clinical data, including CCD data, claims, pharmacy, lab results, and clinical documentation, with deep understanding of how to structure and apply this data to solve healthcare problems.
  • Design and maintain clinical data models, taxonomies, and classification frameworks that enable consistent interpretation and use of clinical data across the organization.
  • Build the clinical data feature store, establishing standards, documentation, and best practices that accelerate adoption of clinical data for downstream analytics, reporting, and AI/ML use cases.
  • Develop analytics by building well‑documented, validated, and reusable data assets (tables, views, features) that empower analysts and data scientists to work independently with clinical data.
  • Create and maintain comprehensive data documentation, including data dictionaries, lineage, business logic, known limitations, and appropriate use guidelines for clinical datasets.
  • Build queries, dashboards, and data visualizations to effectively communicate data quality metrics, data availability, and clinical insights to technical and non‑technical stakeholders.
  • Partner with clinical, operational, and business stakeholders to understand their data needs, translate requirements into data solutions, and ensure clinical data assets meet their analytical objectives.
  • Maintain data quality frameworks for clinical data, including validation rules, anomaly detection, and monitoring processes to ensure data integrity and reliability.
  • Translate clinical concepts into analytical frameworks, ensuring that business partners understand the capabilities and limitations of available clinical data.
  • Collaborate with data engineering teams to inform data pipeline development, ensuring clinical data is ingested, transformed, and stored in ways that support downstream analytics needs.
  • Contribute to data governance initiatives, including compliance with HIPAA, data privacy regulations, and internal data stewardship policies.
  • Develop and deliver training, presentations, and consultations to existing and prospective data consumers on clinical data assets, appropriate use, and analytics opportunities.
  • Stay current with clinical data standards (HL7, FHIR, ICD‑10, SNOMED‑CT, LOINC, CPT, NDC, RxNorm) and industry best practices in clinical informatics.
Required Qualifications
  • 4+ years of relevant experience in clinical informatics, healthcare analytics, or clinical data management.
  • Expertise in clinical data types and structures, including CCD data, lab results, clinical notes, and administrative healthcare data.
  • Strong knowledge of clinical coding systems and terminologies such as ICD‑10, CPT, HCPCS, SNOMED‑CT, LOINC, NDC, and RxNorm.
  • Experience designing and documenting data models, taxonomies, or classification frameworks for clinical or healthcare data.
  • Proven ability to enable and support downstream data consumers (analysts, data scientists, business users) through documentation, training, and consultative support.
  • Pro…
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