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Lead Test Framework Architect; M​/F​/D

Job in Santa Clara, Santa Clara County, California, 95053, USA
Listing for: Agilent Technologies
Full Time position
Listed on 2026-09-04
Job specializations:
  • Software Development
    AI QA / Validation Engineer, Software Testing
Salary/Wage Range or Industry Benchmark: 180000 - 240000 USD Yearly USD 180000.00 240000.00 YEAR
Job Description & How to Apply Below
Position: Lead Test Framework Architect (M/F/D)

Job Description

Agilent is building a Kubernetes-based software platform spanning instruments, applications, and shared services across multiple product lines. We are embedding AI into how we build and verify software. We are looking for a Lead Test Framework Architect to lead the adoption of AI in our software test lifecycle, and to build the test frameworks, evaluation methods, and governance that let us ship AI-accelerated software safely in regulated, GxP / 21 CFR Part 11 environments.

Agilent is building a Kubernetes-based software platform spanning instruments, applications, and shared services across multiple product lines. We are embedding AI into how we build and verify software. We are looking for a Lead Test Framework Architect to lead the adoption of AI in our software test lifecycle, and to build the test frameworks, evaluation methods, and governance that let us ship AI-accelerated software safely in regulated, GxP / 21 CFR Part 11 environments.

This is a hands-on senior individual-contributor role. AI accelerates software delivery, but that acceleration exposes weaknesses downstream without a strong automated-testing control system. Building that control system - and leading the organization to adopt it - is the core of this role.

Responsibilities
  • Lead AI SDLC adoption for quality engineering. Own the strategy for AI-assisted test authoring, execution, triage, and maintenance. Prove value through reference workflows, then scale adoption across product teams.
  • Build AI-native test frameworks. Design workflows that generate unit, contract, integration, and E2E suites from specifications and intent. Verify that AI-generated tests exercise specified intent, not implementation. Integrate Git Hub Copilot (enterprise standard) and complementary tools (e.g., Qodo, Diffblue, Playwright AI agents, self-healing frameworks) into CI/CD quality gates.
  • Test our AI features. Build evaluation and regression frameworks for LLM- and agent-powered product capabilities: non-deterministic evaluation, hallucination and grounding scoring, drift detection, and AI observability using Open Telemetry GenAI conventions.
  • Own the regulatory bridge. Integrate AI-assisted testing into validated environments using risk-based Computer Software Assurance (CSA), GAMP 5 (2nd Edition) and the ISPE GAMP AI Guide, and - for diagnostics software - IEC 62304. Preserve audit trails, traceability, and data integrity for AI-generated artifacts.
  • Establish human-in-the-loop governance. Define risk-scaled review checkpoints, acceptance criteria, and rollback triggers for AI-generated code and tests.
  • Define platform-wide test architecture standards for a Kubernetes-based microservices platform: testability-by-design, test environment strategy (ephemeral name spaces, environment-as-code), CI/CD quality gate architecture, contract testing for microservices and APIs, test data strategy (synthetic data, isolation, AI/ML data requirements), and E2E frameworks that work reliably in containerized environments.
  • Instrument and report on impact. DORA delivery metrics augmented with AI-specific measures (coverage delta, defect-escape rate, mean-time-to-triage, eval-suite pass rates). Lead the change effort - champions, enablement, playbooks - that drives durable adoption.
Qualifications Required
  • 10+ years of software engineering, with 3+ years in test architecture or quality engineering architecture roles.
  • Demonstrated daily, hands-on use of AI-assisted development and testing tools (Git Hub Copilot, Claude Code, Cursor, or equivalent) with the ability to speak concretely to effective usage patterns and failure modes.
  • Deep hands-on Kubernetes expertise for test environment design: episodic namespace provisioning, container-based test infrastructure, environment-as-code.
  • Strong experience designing multi-level test automation frameworks: unit, contract, integration, E2E, and performance testing in distributed systems.
  • CI/CD pipeline architecture and quality gate integration (Git Hub Actions, Jenkins, or equivalent).
  • Contract testing experience (Pact or consumer-driven contract testing) for microservices and API-first architectures.
  • Demonstrated ability to…
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