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Data Engineer - Healthcare and Life Sciences

Job in Washington, District of Columbia, 20022, USA
Listing for: YO AI Labs
Full Time position
Listed on 2026-08-29
Job specializations:
  • IT/Tech
    Data Engineering, Cloud Computing: Infrastructure & Operations
Salary/Wage Range or Industry Benchmark: 140000 - 210000 USD Yearly USD 140000.00 210000.00 YEAR
Job Description & How to Apply Below

Role Name :
Data Engineer, Healthcare and Life Science

Domain :

Information Technology and Healthcare

Role Type :

Full Time

Location :
Washington DC, USA

Experience:

10
-15 Years

The Technical Consultant role is responsible for end-to-end client management, program management, business growth, and client success by ensuring solutions are scalable, secure, cost-efficient, and aligned with modern data engineering, analytics, and AI/ML best practices. The consultant will partner with engineering teams, data product owners, and business stakeholders to establish architectural standards, design cloud-native data platforms, and guide technical execution across complex programs.

Roles and Responsibilities:

  • Drive senior client workshops, problem framing, and solution framing
  • Lead end-to-end client advisory, opportunity creation, and demand generation
  • Engage with business and technical teams to align architecture with business requirements
  • Support RFP and RFI responses and architectural evaluations
  • Experience with Life Sciences datasets, migration, and modernization
  • Understanding of operational layers L1, L2, and L3, along with ontology and context layers
  • Define and enforce data modeling, metadata, lineage, and quality standards
  • Implement CI/CD pipelines and monitoring frameworks
  • Ensure architectures support observability, reliability, and operational excellence
  • Architect end-to-end solutions on AWS and Databricks
  • Define architectural standards, patterns, and best practices
  • Review and guide solution designs for scalability, performance, and security
  • Evaluate technology options and recommend long-term architectural strategies
  • Translate business and analytical requirements into scalable data models
  • Assess current-state data architectures and define future-state models
  • Design scalable data models for analytical and operational workloads
  • Demonstrate strong understanding of metadata, lineage, data quality, and governance frameworks
  • Be familiar with distributed compute paradigms and cloud-native modeling patterns

Required Qualifications:

  • At least
    10+ years of experience in AI, software development, data engineering, or data architecture along with
  • 5+ years of Life Sciences consulting experience
  • Experience driving modernization initiatives for AI products with AI foundations, governance, operational layers, and context layers
  • Strong experience with Databricks, DBT Core or Cloud, Python, Spark, SQL, distributed compute paradigms including in-memory, distributed, and MPP architectures, and Data Vault 2.0 including  knowledge of AWS services including S3, Glue, Redshift, EMR, DynamoDB, Lambda, Athena, and Kinesis
  • Experience leading architecture across multi-team onsite and offshore delivery models
  • Executive presence to lead VP and Executive Director-level meetings and steering committees independently
  • Ability to drive thought leadership, technical visioning, workshops, and client success initiatives
  • Life Sciences experience preferred
  • Ability to translate complex analytical requirements into scalable architectures including data models, ETL pipelines, and consumption layers
  • Experience designing and deploying dashboards and self-service analytics on relational and non-relational databases
  • Strong understanding of CI/CD, Dev Ops, static code analysis, and test-driven development
  • Experience with cloud migration patterns and modern data platform design
  • Experience defining data standards, metadata models, lineage, quality rules, and governance patterns
  • Experience implementing logging, monitoring, observability, and cost optimization frameworks
  • Experience driving enterprise data platform adoption and modern data practices
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