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Software Testing Lead

Software Testing Lead

Saarthi
Early Applicant
  • Posted 8 hours ago
  • Be among the first 10 applicants

Job Description

Description

RoleOverview

As a Test Automation Lead at Dailoqa, you'll architect and implement robust testing frameworks for both software and AI/ML systems. You'll bridge the gap between traditional QA and AI‐specific validation, ensuring seamless integration of automated testing into CI/CD pipelines while addressing unique challenges like model accuracy, GenAI output validation, and ethical AI compliance.

KeyResponsibilities

TestAutomation Strategy & Framework Design

  • Design and implement scalable test automation frameworks for frontend (UI/UX), backend APIs, and AI/ML model‐serving endpoints using tools like Selenium, Playwright, Postman, or custom Python/Java solutions.
  • Build GenAI‐specific test suites for validating prompt outputs, LLM‐based chat interfaces, RAG systems, and vector search accuracy.
  • Develop performance testing strategies for AI pipelines (e.g., model inference latency, resource utilization).

ContinuousTesting & CI/CD Integration

  • Establish and maintain continuous testing pipelines integrated with GitHub Actions, Jenkins, or GitLab CI/CD.
  • Implement shift‐left testing by embedding automated checks into development workflows (e.g., unit tests, contract testing).

AI/MLModel Validation

  • Collaborate with data scientists to test AI/ML models for accuracy, fairness, stability, and bias mitigation using tools like TensorFlow Model Analysis or MLflow.
  • Validate model drift and retraining pipelines to ensure consistent performance in production.

QualityMetrics & Reporting

  • Define and track KPIs.
  • Test coverage (code, data, scenarios)
  • Defect leakage rate
  • Automation ROI (time saved vs. maintenance effort)
  • Model accuracy thresholds
  • Report risks and quality trends to stakeholders in sprint reviews.
  • Drive adoption of AI‐specific testing tools (e.g., LangChain for LLM testing, Great Expectations for data validation).

SoftSkills

  • Strong problem‐solving skills for balancing speed and quality in fast‐paced AI development.
  • Ability to communicate technical risks to non‐technical stakeholders.
  • Collaborative mindset to work with cross‐functional teams (data scientists, ML engineers, DevOps). behavior validation

More Info

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Key Skills

LangChain

Playwright

Great Expectations

MLflow

GitHub Actions

TensorFlow Model Analysis

GitLab CI CD

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