Data Quality Engineer

Consortia Group

Austin (TX)

Hybrid

USD 90,000 - 110,000

Full time

14 days+

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Benefits offered by this job

Competitive salary aligned with Austin market benchmarks
Health insurance
Paid time off
Career growth opportunities
Dedicated budget for continuous learning

Job summary

A leading technology firm in Austin, Texas is seeking a Data Quality Engineer to ensure the reliability and accuracy of data in ML and analytics pipelines. The ideal candidate will have over 4 years of experience in Quality Engineering, proficiency in Python and SQL, and strong knowledge of CI/CD practices. This role offers a competitive salary, health insurance, and opportunities for career growth within an expanding global organization focused on AI and data intelligence.

Qualifications

  • 4+ years’ experience in Quality Engineering, ML Test Automation or Data Quality.
  • Proficiency in Python and SQL to build validation tools and test frameworks.
  • Hands-on experience with CI/CD pipelines and orchestration tools.

Responsibilities

  • Build automated data quality test frameworks across ML and analytics pipelines.
  • Implement and maintain end-to-end regression and integration tests in CI/CD.
  • Deploy and test network sensors across multiple IT environments.

Skills

Quality Engineering
ML Test Automation
Data Quality
Python
SQL
CI/CD pipelines
Distributed systems
Cloud infrastructure

Tools

CircleCI
GitHub Actions
Airflow
MLflow
Kubeflow
Kafka
AWS S3
Snowflake
BigQuery
Great Expectations
dbt
Deequ
Docker
Kubernetes

Job description

Data Quality Engineer – Quality Engineering | Hybrid – Austin, Texas

You know quality is more than a checkbox. It’s the foundation of reliable, intelligent systems – and without trusted data, nothing else works.

As the client expands their asset intelligence capabilities following a recent acquisition, they’re building scalable pipelines and deploying on‑prem network sensors that dramatically improve asset visibility. This is a pivotal moment to join as a Data Quality Engineer, where your work will ensure that the data powering ML and analytics pipelines is consistently accurate, complete, and trusted.

Why This Role?

You’ll join a high‑performing Quality Engineering team focused on embedding testing and validation into every layer of data and ML pipeline development. This is a hands‑on, technical role – but one where your impact will be felt across the business, as the reliability of these systems is central to future growth.

You’ll lead on test automation across integrated data pipelines, drive CI/CD integration of quality checks, and help the company scale its data reliability as systems become more complex.

Where You’ll Make an Impact
  • Build automated data quality test frameworks across ML and analytics pipelines
  • Implement and maintain end‑to‑end regression and integration tests in CI/CD (CircleCI, GitHub Actions)
  • Deploy and test network sensors across multiple IT environments (TAP, SPAN, NETFLOW, etc.)
  • Validate integration of Redjack’s pipelines with the wider architecture of the acquiring company
  • Design monitoring dashboards, anomaly detection pipelines, and alerts for proactive quality management
  • Collaborate with cross‑functional teams to co‑design test plans and evolve testing strategies
  • Create test coverage across structured and unstructured data in production ML systems
You’ll Thrive If You Bring
  • 4+ years’ experience in Quality Engineering, ML Test Automation or Data Quality
  • Proficiency in Python and SQL to build validation tools and test frameworks
  • Hands‑on experience with CI/CD pipelines and orchestration tools (Airflow, MLflow, Kubeflow, GitHub Actions)
  • Strong understanding of distributed systems (e.g. Kafka, APIs) and cloud infrastructure (AWS S3, Snowflake, BigQuery)
  • Familiarity with data quality and validation frameworks such as Great Expectations, dbt, or Deequ
Bonus Points For
  • Exposure to Rust or networking environments
  • Experience with mocking libraries (Mockito, mountebank)
  • Containerisation and orchestration tools (Docker, Kubernetes)
  • Multi‑cloud familiarity: AWS, GCP, and Azure
What’s on Offer
  • Competitive salary aligned with Austin market benchmarks
  • Health insurance, paid time off, and hybrid working (must be Austin‑based)
  • Career growth within a scaling, global software organisation focused on AI and data intelligence
  • Dedicated budget for continuous learning across AI reliability, data governance, and QE
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