Lead Analytics Engineer - Data Modeling & Quality

Arcadia · Remote (USA)

ExclusiveFull-timePublished May 28, 2026

Apply directly on Arcadia’s careers site — no account needed.

About the role

Arcadia is dedicated to happier, healthier days for all. We believe that there is a better healthcare world – one powered by data. Our platform transforms complex, diverse data into a unified foundation for health, helping organizations deliver better care, boost revenue, and lower costs.
We’re a team of fiercely driven individuals committed to making healthcare more sustainable—and we’re looking for passionate people to help us get there.
For more information, visit arcadia.io .
Why This Role Is Important to Arcadia

Arcadia's data platform powers population health analytics for health plans, ACOs, and provider groups across the country. As a Lead Analytics Engineer — Data Modeling & Quality, you sit at the intersection of data quality ownership and analytical data modeling. You'll own the SQL and DBT layer that transforms raw clinical and claims data into trusted, production-grade datasets, while also serving as the quality authority for the data those models produce.

This is a hybrid role — deeper SQL and DBT expertise than a traditional Data Health Professional, with a more analytical and model-focused scope than a Data Engineering role. You're less focused on pipeline infrastructure and more on the logic, shape, and trustworthiness of the data itself.

What Success Looks Like
In 3 months
  • Independently triage and resolve pipeline data quality issues
  • Author at least one new DBT model or refactor an existing one to meet current modeling standards
  • Design a DBT test suite for a set of models lacking coverage
  • Understand the end-to-end pipeline from ingress through silver and gold, and be able to trace a data quality issue to its root layer
In 6 months
  • Building strong working relationships with clients and cross-functional partners (Data Engineering, Customer Success)
  • Deeply familiar with Arcadia's full data stack — from ingress through silver, gold, and downstream consumers
  • Driving at least one improvement project forward, whether technical (e.g. model refactor, new DQ framework) or process-focused (e.g. promotion playbook, triage workflow)
In 12 months
  • Recognized as a leader within the department — peers and stakeholders seek out your expertise on data modeling and quality
  • Operating independently across the full scope of the role with minimal guidance
  • Two or more improvement projects completed and in production, with measurable impact on data quality or operational efficiency

Skills

  • SQL
  • dbt
  • Python

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