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Data Quality Engineer (Contract)

Role overview

Qualifications

  • Bachelor’s degree with 3–5 years of experience in data quality engineering, data operations, or analytics
  • Direct experience working with healthcare data (eligibility, enrollment, medical and pharmacy claims)
  • Advanced SQL proficiency, including writing and optimizing complex queries
  • Strong Python skills with experience building analytical or data validation workflows

Responsibilities

  • Lead data validation and reconciliation efforts for large-scale data migration
  • Validate automated field mappings against legacy data warehouse definitions
  • Execute end-to-end ingestion testing on the new data ingestion platform
  • Design and develop SQL- and Python-based data quality checks

About the company

Wellnecity logo

Wellnecity

Digital Health & Health Tech

Employers and benefits leaders are facing rising healthcare costs along with an overwhelming volume of data from disconnected vendors and health plan partners. Siloed information makes it difficult to understand what's working, identify savings opportunities, coordinate action, or confidently govern health plan decisions. Wellnecity is a health plan optimization platform that helps self-funded employers improve performance, strengthen accountability, and support health plan governance. We provide real-time, continuous monitoring and oversight that enables data-backed decisions by: • Unifying vendor data across medical claims, PBM, and point solutions • Delivering clear visibility into performance, cost drivers, and emerging risk • Identifying members of interest earlier to enable more timely and appropriate engagement • Producing defensible records benefits leaders can rely on to document decisions, oversight activities, and outcomes • Providing ongoing decision support to help employers improve plan performance, strengthen accountability, and achieve better member outcomes The result: lower costs, stronger health plan governance, higher engagement, better member outcomes, reduced fiduciary risk, and a provable return on investment.

Company details

IndustryDigital Health & Health Tech
Company size11-50

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Job description

About Wellnecity:

Wellnecity is the platform for high-performance health plans. We help self-insured employers, advisors, and vendors achieve cost savings, better benefit utilization, and improved member outcomes. If you are passionate about data and improving the US healthcare system, help us rewrite the rules leveraging our proprietary Smart Hub. The ideal contractor will thrive in a fast-paced entrepreneurial environment where your voice is expected to be heard.

Why Join Wellnecity?

  • Impact: Play a critical role in revolutionizing healthcare benefits and data management by supporting the mission to help employers operate higher quality and value health plans

  • Growth: Shape and grow a high-quality and passionate team

  • Innovation: Work with the latest technologies in cloud computing, data engineering, and healthcare data processing

Scope of Work Overview:

We are engaging up to two Data Quality Engineers (independent contractor) to support a large-scale data migration initiative, followed by ongoing data quality operations across healthcare datasets (claims, eligibility, and enrollment). These consultants will focus on validating, reconciling, and improving data quality across systems, ensuring accuracy and usability for downstream analytics and client delivery. The consultant will be energized by collaborating with complex, imperfect data and contributing to the continuous improvement of Wellnecity’s data infrastructure and product capabilities.

This consultancy is offered on a contract basis, with an expected initial term of up to one year.

Collaboration and Location:

These consultants will be collaborating very closely with Head of Data Operations. The services should be performed remotely in the United States.

Key Services Include:

  • Lead data validation and reconciliation efforts for large-scale data migration spanning medical claims, pharmacy claims, and eligibility and enrollment datasets – ensuring accuracy, completeness, and consistency across more than 70 data sources and hundreds of client feeds.

  • Validate automated field mappings against legacy data warehouse definitions, surfacing schema differences, value-domain mismatches, and transformation gaps, and partnering with Data Engineering to drive resolution.

  • Execute end-to-end ingestion testing on the new data ingestion platform – running test files, reconciling outputs against legacy baselines and confirming that record counts, field-level distributions, and key business metrics fall within established quality thresholds prior to production cutover.

  • Design and develop SQL- and Python-based data quality checks, including source-to-target reconciliation queries, distribution comparisons, completeness tests, and parity validation for templating mapping deployments applied across multiple client data feeds.

  • Identify, document, and triage data discrepancies – including missing records, value mismatches, schema drift, and downstream transformation errors – driving structured resolution across Data Engineering, Product, and platform teams.

  • Establish and maintain data quality rules and validation thresholds per data source – including field-completeness rates, record-count tolerance, value-distribution expectations, and parity criteria for templated client deployments – to ensure consistent and repeatable validation across the full migration scope.

  • Document validation logic, sign-off criteria, and known data caveats per source in migration tracking artifacts and run-book documentation, enabling defensible cutover decisions and providing an audit trail for completed migration phases.

  • Support the transition from migration to steady-state operations by operationalizing data quality checks and monitoring processes, ensuring continuity of validation rigor as each source completes cutover.

  • Contribute to ongoing data quality management, including identifying patterns, improving validation of workflows, and reducing recurring data issues.

Required Experience:

  • Bachelor’s degree with 3–5 years of experience in data quality engineering, data operations, or analytics (Master’s may substitute for experience).

  • Direct experience working with healthcare data (eligibility, enrollment, medical and pharmacy claims).

  • Advanced SQL proficiency, including writing and optimizing complex queries and experience in design, implementations, and optimization in relational SQL databases.

  • Strong Python skills with experience building analytical or data validation workflows.

  • Experience with data cleansing, curation, mining, manipulation, and analysis from disparate systems (SQL, Python preferred).

  • Demonstrated experience supporting large-scale data migrations, including source-to-target validation and data reconciliation.

  • Experience validating data pipelines and ETL transformation logic – confirming accuracy of field mappings, derived fields, and aggregated business metrics against expected outputs.

  • Proven ability to analyze complex, imperfect datasets, identify root causes, and resolve data issues.

  • Experience owning or contributing to data quality processes, including defining validation logic and maintaining data integrity.

  • Strong collaboration skills with experience working cross-functionally with data engineering, product, or analytics teams.

Application Timeline

We anticipate that the application window for this opening will close on: October 23rd, 2026. Submission does not guarantee selection, and Wellnecity reserves the right to modify or cancel the hiring process at any time.

Only shortlisted candidates will be contacted. We’ll retain all applications for future consideration.

Finalists will complete an practical SQL and Python-based exercise using representative healthcare data to demonstrate analytical rigor, problem-solving approach, and code quality.

Equal Opportunity Hiring

Wellnecity is an Equal Opportunity Employer. We consider all qualified applicants without regard to race, color, religion, sex, national origin, age, disability status, veteran status, sexual orientation, or any other characteristic protected by federal or Puerto Rico law.

ADA & Reasonable Accommodation Statement

If you require a reasonable accommodation during the selection process, please reach out through our general contact form or indicate this in your application.

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Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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