Specialist, QA Test Automation

CogecoColumbus, OH
$85,600 - $128,400Hybrid

About The Position

We are looking for a sharp, curious Specialist, QA Test Automation who can bridge the gap between strategic vision and day-to-day technical execution. Working closely with the Chapter Lead, QA — who provides the overarching AI QA strategy—you will be embedded within Cogeco’s AI squads to bring that strategy to life. In this role, you will move past standard "pass/fail" scripts to tackle the complex world of non-deterministic outputs. You will focus heavily on probabilistic testing, curating golden datasets, and leveraging cutting-edge LLM evaluation tools like Promptfoo. If you have a solid foundation in QA or software engineering, a healthy obsession with automation, and a restless drive to learn, you’ll fit right in.

Requirements

  • College diploma or Degree in Computer Science, Engineering, or a related discipline (or equivalent practical experience).
  • A strong foundation in core QA principles combined with a passion for AI/ML.
  • 3+ years of experience in Quality Assurance, Software Engineering, or Data Engineering.
  • Experience in Python or JavaScript/TypeScript (essential for configuring evaluation frameworks like Promptfoo and manipulating test data).
  • Experience with test automation frameworks, API testing, and code repositories (Git).

Nice To Haves

  • Exposure to Golden Datasets: creating, maintenance, and/or scaling of high-quality golden datasets used as the source of truth for benchmarking model changes.
  • Exposure to AI Eval Tooling: Champion programmatic evaluation tools such as Promptfoo, DeepEval, or Ragas to automate the assessment of prompt variants and model performance.
  • Experience working with pipeline tools (e.g., Bitbucket pipelines, Google Cloud run, GitHub Actions, GitLab CI, Jenkins).

Responsibilities

  • Implement and refine testing workflows tailored for AI powered solutions where outputs are probabilistic rather than deterministic.
  • Build guardrails to identify model drift, prompt regression, hallucination risks, and safety violations before they hit production.
  • Own the creation, maintenance, and scaling of high-quality golden datasets used as the source of truth for benchmarking model changes.
  • Champion programmatic evaluation tools such as Promptfoo, DeepEval, or Ragas to automate the assessment of prompt variants and model performance.
  • Partner closely with the Chapter Lead, QA to translate high-level AI QA frameworks into actionable, daily tasks for technical teams.
  • Provide real-time feedback to the Chapter Lead on how the strategy is performing in the trenches, recommending practical pivots based on real-world results.
  • Collaborate with DevOps specialists to inject AI evaluation metrics directly into modern CI/CD pipelines, ensuring automated gates handle fluid AI responses.
  • Validate data pipelines feeding our models, ensuring that data integrity is maintained from ingestion to inference.

Benefits

  • Flexibility
  • Fun
  • Discounted services
  • Rewarding Pay
  • Attractive compensation packages
  • Great culture
  • Benefits
  • Career Evolution
  • Technology
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