Infosys
Data for AI Testing Lead
Bangalore, India
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- Seniority
- Lead / management
- Country
- IN
- Work mode
- On-site / unstated
- First seen by hirly
- 27 Sept 2026
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the posting
We are seeking a Quality Engineering Lead to drive the delivery of AI Data Assurance initiatives by ensuring trusted, high-quality, and AI-ready data foundations. This role is responsible for defining quality strategies, establishing AI Data assurance frameworks, driving automation, and ensuring trusted, high-quality, AI-ready data foundations that enable reliable, responsible, and business-aligned AI outcomes.
The ideal candidate will have strong experience in Data Testing, AI Data Assurance, Analytics Testing, AI/ML Data Validation, and Quality Engineering, along with a solid understanding of AI/GenAI ecosystems, LLMs, RAG architectures, DataOps/MLOps, and Responsible AI practices
Responsibilities
Project & Delivery Leadership
Lead end-to-end delivery of AI Data Assurance programs.
Drive delivery governance, quality metrics, executive reporting, and Agile/Hybrid delivery excellence.
Quality Engineering, AI Assurance & Governance
Define quality strategies, testing frameworks, and assurance processes for AI/ML, GenAI, AI data assurance, analytics, and BI platforms.
Govern end-to-end validation, release readiness, and quality gates.
Lead testing and validation of data platforms, pipelines, analytics solutions, BI platforms and AI-ready datasets.
Implement AI Data Harness Assurance across data pipelines, RAG systems, vector stores, and AI workflows.
Drive AI Data Outcome Assurance by evaluating AI output quality, reliability, explainability, and business alignment.
Support Responsible AI, AI Governance, and Model Assurance initiatives.
Automation, Client Orientation & Team Leadership
Build automation frameworks for AI Data Assurance, BI assurance and continuous quality monitoring.
Embed quality controls and assurance gates within DataOps, MLOps, and CI/CD pipelines.
Lead and mentor AI Data Assurance teams and drive capability development, quality reviews, and continuous improvement.
Collaborate with business, product, data engineering, architecture, AI/ML, and platform teams to deliver AI transformation initiatives.
Drive automation, AI assisted testing, capability development, and continuous improvement initiatives.
Build AI data assurance accelerators and participate in client demos
Contribute to client pursuits, solutioning, proposals, estimations, and AI assurance offerings.
Build partnerships, thought leadership assets, innovation frameworks, webinars, workshops, and knowledge-sharing initiatives.
Technical requirements
Required Skills & Experience
5+ years of experience in Data Quality Engineering, Analytics Testing, or Data driven transformation programs.
3+ years leading AI Data Assurance, AI/GenAI, Analytics, or AI Quality Engineering initiatives
Strong knowledge of AI/ML, GenAI, LLMs, various RAG Architectures, Prompt Engineering, Vector Databases, DataOps/MLOps, and AI Governance.
Strong expertise in ETL Testing, Analytics & BI Testing, Reporting Validation, AI Data Readiness Assurance, AI Data Harness Assurance, AI Data Outcome Assurance and Continuous AI Assurance
Hands-on Experience with Cloud Data & AI Platforms such as Azure, AWS, GCP, Databricks, Snowflake, Microsoft Fabric, or similar.
Strong leadership, stakeholder management, communication, and mentoring skills
Additional responsibilities
Technical & Professional Requirements
Agile Delivery, Quality Governance
AI Data Assurance, AI/ML, GenAI, LLMs & RAG Architectures
Data Quality, Data Governance & Responsible AI
ETL, Data Warehouse, Analytics, BI & Data Integration Testing
SQL, Snowflake, Databricks, Informatica & Azure Data Factory (ADF)
Prompt Engineering & Retrieval Assurance
Python, PySpark & Test Automation
Playwright, API Testing
Vector Databases, AI Data Pipelines, DataOps & MLOps
Azure, AWS & GCP Data & AI Platforms
Jira, Zephyr, Azure DevOps & CI/CD
Education
Bachelor of Engineering
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