Data QA Manager

eNGINE

Pittsburgh (Allegheny County)

Remote

USD 120,000 - 160,000

Full time

14 hours ago
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Job summary

eNGINE is seeking a hands-on Data QA Manager to lead the quality assurance strategy for enterprise data pipelines, platforms, and analytics products. This role is remote with quarterly travel to Pittsburgh and EST hours.

You will manage a four-person QA team, introduce automation with Python, PyTest, and Databricks, and partner with Data Engineering, Analytics, and Governance to raise data quality standards.

Qualifications

  • 7+ years of QA/testing experience in data, pipelines, or analytics.
  • Strong Data QA / Data Quality background.
  • Advanced SQL skills validating complex data sets, tables, transformations, and relationships.
  • Hands-on PyTest experience for automated testing.
  • Experience developing automated testing for data pipelines or data products.
  • Experience with data mapping, data lineage, transformation validation, and downstream data validation.
  • Leadership or mentoring of QA professionals.
  • Strong communication and ability to influence data quality approaches across teams.

Responsibilities

  • Lead the Data QA function and establish a structured approach to test planning, execution, documentation, and regression coverage.
  • Develop and evolve testing strategies for data pipelines, transformation processes, data models, and analytics outputs.
  • Use advanced SQL skills to validate tables, transformations, relationships, and downstream data products.
  • Build and expand automated data testing capabilities using Python and PyTest, moving beyond manual validation.
  • Help evaluate and implement frameworks, tools, and standards for automated data quality testing.
  • Establish validation checkpoints across the data lifecycle, from ingestion through transformation to delivery.
  • Define test coverage around data completeness, accuracy, consistency, and timeliness.
  • Validate data within Databricks and other modern data environments.
  • Collaborate with Data Engineering to shift testing left in the development lifecycle.
  • Lead defect identification, root-cause discussions, and resolution tracking for data quality issues.
  • Establish metrics demonstrating testing coverage, automation progress, defects, and data quality.
  • Mentor and develop QA team members while remaining hands-on with complex testing.
  • Collaborate with QA leadership and engineering partners on long-term testing strategy and tech stack.

Skills

SQL
Python
PyTest
Data QA
Data Quality
Data testing
QA Leadership
Communication

Education

Bachelor's degree in CS / IS / Data Eng

Tools

Databricks
Great Expectations
dbt tests
Soda
Monte Carlo

Job description

Location: 100% Remote | quarterly travel to Pittsburgh required

Hours: Comfortable working EST hours

Role Overview

eNGINE is seeking a hands-on Data QA Manager to lead and mature the quality assurance strategy for enterprise data pipelines, platforms, and analytics products.

This is an opportunity to have a significant voice in how a growing Data QA practice is structured, automated, and measured. The ideal candidate combines a strong QA foundation with deep data testing experience and is highly proficient with SQL, Python, PyTest, and Databricks.

The organization is currently heavily manual and is looking for someone who can introduce practical automation, establish repeatable testing standards, and help determine the right tooling and approach for data quality.

You will lead a team of four QA professionals while remaining technically engaged in the work. This role will report to the Director of QA and partner closely with Data Engineering, Data & Analytics, and Data Governance teams.

Responsibilities
  • Lead the Data QA function and establish a structured approach to test planning, execution, documentation, and regression coverage.
  • Develop and evolve testing strategies for data pipelines, transformation processes, data models, and analytics outputs.
  • Use advanced SQL skills to validate tables, transformations, relationships, and downstream data products.
  • Build and expand automated data testing capabilities using Python and PyTest, moving the team beyond predominantly manual validation.
  • Help evaluate and implement frameworks, tools, and standards for automated data quality testing.
  • Establish validation checkpoints throughout the data lifecycle, from ingestion through transformation and final delivery.
  • Define practical test coverage around data completeness, accuracy, consistency, uniqueness, and timeliness.
  • Validate data within Databricks and other modern data environments.
  • Work across transformation and semantic layers to ensure data behaves as expected from source through consumption.
  • Establish regression testing for changes to pipelines, source systems, transformations, and data models.
  • Partner with Data Engineering to identify opportunities to incorporate testing earlier in the development lifecycle.
  • Lead defect identification, prioritization, root-cause discussions, and resolution tracking for data quality issues.
  • Establish metrics that demonstrate testing coverage, automation progress, defects, and overall data quality.
  • Mentor and develop QA team members while remaining hands-on with complex testing and validation efforts.
  • Collaborate with QA leadership and engineering partners to determine the appropriate long-term testing methodology and technology stack.
Required Qualifications
  • 7+ years of professional QA/testing experience, with significant experience testing data, data pipelines, or analytics environments.
  • Strong background in Data QA or Data Quality; candidates primarily coming from Data Engineering with limited QA experience will not be a fit.
  • Advanced SQL skills and experience validating complex data sets, tables, transformations, and relationships.
  • Hands-on PyTest experience for automated testing.
  • Experience developing and implementing automated testing for data pipelines or data products.
  • Experience with data mapping, data lineage, transformation validation, and downstream data validation.
  • Understanding of both transformation and semantic layers within a data architecture.
  • Demonstrated ability to establish structured QA practices, including test cases, test plans, regression coverage, and repeatable validation processes.
  • Experience leading, mentoring, or managing QA professionals.
  • Strong communication skills and the ability to influence how teams approach data quality and testing.
Preferred Experience
  • Experience managing a QA team or serving as a senior QA lead with significant mentoring and technical leadership responsibilities.
  • Experience with data quality frameworks or tools such as Great Expectations, dbt tests, Soda, Monte Carlo, or similar technologies.
  • Experience with Databricks technologies including Delta Lake, Unity Catalog, or medallion architecture.
  • Experience with data contracts, pipeline observability, or automated regression testing.
  • Experience in healthcare, pharmaceutical, specialty pharmacy, or another regulated industry.
  • Familiarity with data governance principles and translating governance requirements into executable QA criteria.
  • AI/ML data testing or validation experience.
  • ISTQB/ASTQB certification.
  • Bachelor's degree in Computer Science, Information Systems, Data Engineering, or a related discipline, or equivalent professional experience.
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