Fold Health
Linkedin · Posted 3mo ago
Data Engineer
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Indexed description
- Bachelor’s or Master’s degree in Computer Science, Data Engineering, or related field.
- 5+ years of hands-on experience in data engineering (cloud-native environments preferred).
- Strong proficiency in SQL and Python for data engineering workflows.
- Proven experience with:
- Google Cloud Dataflow, Datastream, or Airbyte (streaming & ingestion pipelines)
- AWS Postgres (transactional & analytical use cases)
- Google FHIR Store (FHIR APIs & EHR ingestion)
- Google BigQuery (large-scale data warehouse/lakehouse)
- dbt/OBT for transformations and modeling
- Experience designing and maintaining unified data models from heterogeneous healthcare data sources.
- Familiarity with healthcare data standards: HL7, FHIR, X12 EDI (837/835), ICD, SNOMED, ADT, CCD/CCDA.
- Experience ensuring HIPAA-compliant data handling, governance, and observability.
- Knowledge of data modeling (star/snowflake schemas) and cloud-native architectures (AWS/GCP).
Good to Have
- Experience with Health care standardization frameworks.
- Building feature stores for AI/ML pipelines.
- Familiarity with real-time streaming.
- Hands-on with Power BI or other BI tools for analytics enablement.
- Prior work in Value-Based Care, ACOs, MSOs, or population health environments.
- Ability to mentor junior engineers and establish team-wide best practices.
- Build impactful data pipelines powering AI, LLMs, and BI in healthcare.
- Work on meaningful problems that directly improve patient outcomes and provider efficiency.
- Be part of a growing tech-first healthcare company with strong domain expertise.
- Collaborative culture with AI, data, product, and engineering teams.
- Competitive compensation, benefits, and career growth opportunities.
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