Data Quality Engineer

Kemper

Richmond (VA)

Hybrid

USD 99,000 - 164,800

Full time

14 days+

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Benefits offered by this job

Health and dental plans
401(k) match
Tuition assistance
Paid time off
Employee discounts

Job summary

Kemper is seeking a Data Quality Engineer specializing in Data Testing and Quality Engineering to design, implement, and optimize enterprise data validation frameworks that ensure the accuracy, reliability, and integrity of business‑critical data solutions.

The ideal candidate will lead automated testing, validation, and CI/CD integration across Snowflake, Oracle, and AWS, while mentoring teammates and ensuring governance, security, and compliance across data platforms.

Qualifications

  • Bachelor’s degree in Computer Science, Information Systems, or a related field.
  • 6+ years of experience in data engineering, data testing, or database development.
  • SQL development and query tuning.
  • Automated data testing and validation methodologies.
  • Informatica and IICS for ETL and data integration testing.
  • Snowflake data warehouse architecture and validation.
  • Oracle database systems.
  • Data reconciliation and data profiling techniques.
  • Data modeling, normalization, and relational design.
  • Handling and validating XML and JSON data structures.
  • Building data quality solutions in AWS cloud environments.
  • Python‑based automation and testing frameworks.

Responsibilities

  • Build, maintain, and optimize automated data testing frameworks and validation pipelines that support enterprise reporting, analytics, and business applications using SQL, Informatica, IICS, Snowflake, and Python.
  • Develop and execute data validation routines for extracts, transformations, and reporting datasets to ensure completeness, accuracy, consistency, and reliability of enterprise data assets.
  • Design automated reconciliation processes between source and target systems, including row count validation, schema validation, transformation testing, and data profiling.
  • Partner with data engineering teams to embed testing and quality controls into ETL/ELT pipelines and CI/CD deployment processes across Snowflake, Oracle, and AWS environments.
  • Leverage AI‑assisted development tools and intelligent automation techniques to improve test coverage, accelerate validation processes, and enhance the efficiency of data quality engineering practices across enterprise data platforms.
  • Support and contribute to enterprise test environment strategy, including environment planning, test data management, deployment coordination, integration testing support, and validation across development, QA, UAT, and production environments.
  • Ensure compliance with enterprise data governance, security, and regulatory requirements by implementing data quality standards, monitoring controls, and audit‑ready validation processes.
  • Work with structured and semi-structured data formats (XML, JSON) and cloud‑native services to validate data ingestion, transformation, and integration processes across distributed platforms.
  • Collaborate with data engineers, analysts, QA teams, and business stakeholders to define testing requirements, improve data quality processes, and support reporting solutions such as Power BI.
  • Recommend and implement improvements to data quality frameworks, testing automation, monitoring solutions, governance processes, and DataOps practices. Mentor junior team members and promote best practices in data quality engineering and testing.

Skills

SQL development
Automated testing
Informatica IICS
Snowflake validation
Oracle databases
Python automation
Data governance
ETL testing
CI/CD pipelines
Power BI integration

Education

Bachelor's degree in CS/IS
Equivalent work experience

Tools

Informatica
IICS
Snowflake
Oracle
AWS
PowerShell

Job description

Location(s)

Alpharetta, Georgia, Birmingham, Alabama, Chicago, Illinois, Downers Grove, Illinois, Jacksonville, Florida, Remote-CT, Remote-NJ, Remote-OH, Remote-PA, Remote-RI, Remote-VA

Position Summary

Kemper is seeking a Data Quality Engineer specializing in Data Testing and Quality Engineering to design, implement, and optimize enterprise data validation frameworks that ensure the accuracy, reliability, and integrity of business‑critical data solutions. This role provides technical leadership across data testing, validation, reconciliation, automation, and quality assurance processes supporting analytics, reporting, and operational systems.

The ideal candidate is a self‑motivated problem solver with strong intellectual curiosity, deep expertise in data engineering and automated testing practices, and a strong understanding of data governance, security, and compliance principles.

As a senior member of the data engineering team, you will be responsible for developing scalable data validation frameworks, ensuring data integrity across pipelines and platforms, implementing automated testing strategies throughout the data lifecycle, and supporting enterprise test environment strategy across complex data ecosystems.

Position Responsibilities

Design and Develop Data Testing Solutions

Build, maintain, and optimize automated data testing frameworks and validation pipelines that support enterprise reporting, analytics, and business applications using SQL, Informatica, IICS, Snowflake, and Python.

Data Validation and Quality Assurance

Develop and execute data validation routines for extracts, transformations, and reporting datasets to ensure completeness, accuracy, consistency, and reliability of enterprise data assets.

Test Automation and Reconciliation

Design automated reconciliation processes between source and target systems, including row count validation, schema validation, transformation testing, and data profiling.

Data Pipeline Quality Engineering

Partner with data engineering teams to embed testing and quality controls into ETL/ELT pipelines and CI/CD deployment processes across Snowflake, Oracle, and AWS environments.

AI‑Enabled Test Development and Automation

Leverage AI‑assisted development tools and intelligent automation techniques to improve test coverage, accelerate validation processes, and enhance the efficiency of data quality engineering practices across enterprise data platforms.

Test Environment Strategy and Management

Support and contribute to enterprise test environment strategy, including environment planning, test data management, deployment coordination, integration testing support, and validation across development, QA, UAT, and production environments.

Data Governance and Compliance

Ensure compliance with enterprise data governance, security, and regulatory requirements by implementing data quality standards, monitoring controls, and audit‑ready validation processes.

Integration and Monitoring

Work with structured and semi-structured data formats (XML, JSON) and cloud‑native services to validate data ingestion, transformation, and integration processes across distributed platforms.

Collaboration and Leadership

Collaborate with data engineers, analysts, QA teams, and business stakeholders to define testing requirements, improve data quality processes, and support reporting solutions such as Power BI.

Continuous Improvement

Recommend and implement improvements to data quality frameworks, testing automation, monitoring solutions, governance processes, and DataOps practices. Mentor junior team members and promote best practices in data quality engineering and testing.

Position Qualifications
Required Skills and Experience
  • Bachelor’s degree in Computer Science, Information Systems, or a related field; equivalent work experience considered.
  • 6+ years of experience in data engineering, data testing, or database development.
  • SQL development and query tuning.
  • Automated data testing and validation methodologies.
  • Informatica and IICS for ETL and data integration testing.
  • Snowflake data warehouse architecture and validation.
  • Oracle database systems.
  • Data reconciliation and data profiling techniques.
  • Data modeling, normalization, and relational design.
  • Handling and validating XML and JSON data structures.
  • Building data quality solutions in AWS cloud environments.
  • Python‑based automation and testing frameworks.
  • Strong knowledge of test environment strategy, including environment planning, test data management, deployment coordination, integration testing support, and validation across development, QA, UAT, and production environments.
  • Experience establishing and supporting end‑to‑end test strategies for enterprise data pipelines and distributed data platforms.
  • Understanding of environment dependencies, release validation processes, and data synchronization considerations for large‑scale data ecosystems.
  • Experience developing automated test scripts and reusable validation frameworks.
  • Strong understanding of ETL/ELT testing methodologies and end‑to‑end data flow validation.
  • Strong problem‑solving abilities and the capacity to work independently on complex technical challenges.
  • Deep understanding of data security, governance, compliance, and data quality best practices.
  • High degree of self‑motivation, intellectual curiosity, and commitment to continuous improvement.
Preferred Qualifications
  • Insurance industry experience (P&C and/or Life).
  • Experience working with IDMC/IICS.
  • Experience with Data Vault 2.0 methodologies.
  • Experience with data quality and observability tools.
  • Experience with PowerShell or Python for automation and scripting.
  • Knowledge of Git and CI/CD pipelines for automated testing and deployment.
  • Exposure to hybrid or multi‑cloud data architectures.
  • Experience with Spark, Kafka, Airflow, DBT, and Infrastructure as Code frameworks.
  • Experience implementing automated monitoring, alerting, and anomaly detection for data pipelines.
  • Familiarity with DevOps and DataOps practices for enterprise data platforms.
  • Experience supporting Power BI reporting and downstream analytics validation.
  • Experience utilizing AI‑assisted development and testing tools to accelerate test case generation, validation scripting, anomaly detection, and quality engineering processes.
  • Familiarity with AI‑enabled data observability, intelligent test automation, and machine learning‑assisted quality monitoring solutions.
  • Experience leveraging generative AI tools for SQL validation, automated documentation, test optimization, and pipeline quality analysis.
  • The position can be worked hybrid out of a local Kemper office or remotely for a non‑local candidate.
  • Sponsorship is not accepted for this position.
  • The range for this position is $99000 to $164800. When determining candidate offers, we consider experience, skills, education, certifications, and geographic location among other factors. This job is eligible for an annual discretionary bonus and Kemper benefits (Medical, Dental, Vision, PTO, 401k).
Benefits
  • Qualify for your choice of health and dental plans within your first month.
  • Save for your future with robust 401(k) match, Health Spending Accounts and various retirement plans.
  • Learn and grow with our Tuition Assistance Program, paid certifications and continuing education programs.
  • Contribute to your community through United Way and volunteer programs.
  • Balance your life with generous paid time off and business casual dress.
  • Get employee discounts for shopping, dining and travel through Kemper Perks.
Equal Employment Opportunity Statement

Kemper is proud to be an equal opportunity employer. All applicants will be considered for employment without attention to race, color, religion, sex, sexual orientation, gender identity, national origin, veteran, disability status or any other status protected by the laws or regulations in the locations where we operate. We are committed to supporting diversity and equality across our organization and we work diligently to maintain a workplace free from discrimination.

Kemper does not accept unsolicited resumes through or from search firms or staffing agencies. All unsolicited resumes will be considered the property of Kemper and Kemper will not be obligated to pay a placement fee.

Kemper will never request personal information, such as your social security number or banking information, via text or email. Additionally, Kemper does not use external messaging applications like WireApp or Skype to communicate with candidates. If you receive such a message, delete it.

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