Principal Software Engineer
Cadence Design Systems · BANGALORE
- Employer
- Cadence Design Systems
- Requisition id
- Principal-Software-Engineer_R56124
- First posted (employer ATS)
- (21d ago)
- First seen by this site
- 2026-09-15T10:45:29Z
- Last verified live
- 2026-10-06T01:17:56Z
- Source
- Employer career portal (workday)
Job description
At Cadence, we hire and develop leaders and innovators who want to make an impact on the world of technology.
Senior AI Test / Automation Engineer
Overview
Role:
AI Test / Automation Engineer
Location:
Bangalore India
Department:
AI Engineering / Quality Assurance
Experience Level:
Mid to Senior
We are looking for a highly motivated
Senior
AI Test / Automation Engineer
to design and scale automated validation frameworks for
AI/ML models, LLM-based applications, and agentic systems
. This role is critical to ensure that AI solutions meet enterprise standards for
quality, reliability, safety, and compliance
before and after production deployment.
Key Responsibilities
Build and maintain AI test automation frameworks
for pre-qualification and continuous validation of models and agent workflows
Develop comprehensive test suites
, including:
Unit, integration, and end-to-end (E2E)
Functional, regression, performance, and safety testing
Validate AI system behavior
, including:
Non-deterministic LLM outputs
Hallucinations and edge cases
Multi-step agent decision-making
Design and manage evaluation systems
:
Golden datasets
Benchmarking pipelines (accuracy, latency, reliability)
Automate testing within CI/CD pipelines
for model updates, prompt changes, and tool integrations
Implement observability and telemetry
to enable traceability, monitoring, and audit readiness
Collaborate cross-functionally
with ML, MLOps, Product, and Security teams to define quality gates and release criteria
Track and report quality KPIs
, including test coverage, defect leakage, and system reliability
Drive root-cause analysis and continuous improvement
across the AI testing lifecycle
Required Skills
Core Engineering
Strong programming skills in
Python
; familiarity with
Bash, TypeScript, or Go
Experience with
test automation frameworks
such as PyTest, Playwright, Selenium, or Cypress
Proficiency in
CI/CD tools
(GitHub Actions, Jenkins, GitLab CI)
Experience with
cloud platforms
(AWS, Azure, GCP) and
containers
(Docker, Kubernetes)
AI / ML & Agentic Systems
Hands-on experience with
LLM ecosystems
(OpenAI, Anthropic, Bedrock)
Familiarity with:
RAG architectures
and vector databases (Pinecone, Weaviate)
Agent frameworks
(LangChain, LlamaIndex, AutoGen)
AI Testing Techniques
Experience with
non-deterministic testing approaches
(statistical assertions, tolerance thresholds)
Knowledge of
evaluation methods
:
LLM-as-a-judge
BLEU, ROUGE, semantic similarity scoring
Experience with
prompt and agent regression testing
Understanding of
AI safety testing
, including adversarial testing, bias/fairness validation, and jailbreak detection
Tooling (Preferred)
AI testing & observability tools:
LangSmith, TruLens, Arize, Weights & Biases
Evaluation tools:
DeepEval, Ragas, PromptFoo, Giskard
Monitoring:
Prometheus, Grafana, OpenTelemetry
Soft Skills
Strong analytical and problem-solving skills
Excellent communication and cross-functional collaboration
Data-driven mindset with focus on
quality KPIs
Detail-oriented with a strong bias toward
automation and scalability
Experience Requirements
7+ years
in QA, SDET, or test automation engineering
Proven experience building and scaling
automation frameworks
Hands-on experience with
AI/ML systems or LLM-based applications
Experience testing
RAG pipelines or agentic workflows
Owned end-to-end
AI test strategy and architecture
Defined
quality metrics and release gates
Delivered
scalable validation pipelines
for production AI systems
Supported
audit and compliance readiness
Preferred
Experience in
enterprise or regulated environments
(SOC2, ISO 27001, etc.)
Exposure to:
Shift-left testing practices
Production observability and monitoring
Chaos or resilience testing
Senior-Level Differentiators
Education
Bachelor’s or Master’s degree in
Computer Science, Software Engineering, or related field
Nice-to-have:
ISTQB certification
Cloud/ML certifications (AWS, Azure, GCP)
AI testing certifications
What Success Looks Like
AI systems that are
accurate, reliable, and safe
Fully automated test pipelines integrated into CI/CD
Measurable improvements in
defect leakage and model quality
Strong observability and auditability across AI systems
Scalable validation frameworks supporting rapid AI innovation
We’re doing work that matters. Help us solve what others can’t.
Apply on Cadence Design Systems’s site
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