QA Engineer for AI Products/Solutions

Sophus IT Solutions · Bellevue, WA

Spotted 57m agocontract
Job description

About this role

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QA Engineer for AI Products/Solutions

Location - Bellevue WA

Job Description

  • Design and execute test plans for AI/ML-driven features, including model outputs, prompts, and integrated application behavior
  • Build and maintain automated test suites covering functional, regression, integration, and API testing
  • Evaluate model outputs for accuracy, consistency, bias, hallucination, and edge-case failures
  • Develop evaluation frameworks and golden datasets/test cases to benchmark model performance over time
  • Test prompt engineering changes, model version upgrades, and fine-tuning outputs for regressions
  • Perform adversarial and red-team style testing to surface safety, security, and robustness issues
  • Validate data pipelines feeding into AI models (data quality, schema, drift detection)
  • Collaborate with data scientists/ML engineers to define acceptance criteria and quality metrics for models
  • Test latency, scalability, and reliability of AI services under load
  • Contribute to CI/CD pipelines, integrating automated and model-evaluation tests
  • Hands-on experience testing LLM-based products (chatbots, copilots, RAG systems, AI agents) — designing test cases for non-deterministic, generative outputs
  • Practical experience with AI/LLM evaluation frameworks (e.g., Ragas, DeepEval, LangSmith, Promptfoo, OpenAI Evals, TruLens) — building eval suites, scoring rubrics, and golden datasets
  • Working knowledge of eval metrics for generative AI: hallucination rate, faithfulness/groundedness, relevance, answer correctness, toxicity/bias scoring, BLEU/ROUGE/semantic similarity where applicable
  • Experience with prompt regression testing — validating prompt changes and model/version upgrades against baseline eval sets
  • Strong proficiency in Python for writing eval scripts, test harnesses, and data validation logic
  • Familiarity with SQL and data validation techniques

The environment is primarily Microsoft Azure-based, with Snowflake also playing a key role. Their GenAI initiatives largely leverage OpenAI and Claude models.

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