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AI Test Engineer - Senior Manager

30+ days ago 2026/10/31
Other Business Support Services
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Job description

About Vialto Labs (VLabs)




Vialto Labs (VLabs)is responsible forredesigning how work is delivered in the tax and immigration service lines, as well as driving operational efficiency acrossVialto’sfunctional areas using AI. The team builds and deploys novel AI-enabled solutions that directly improve productivity and increase delivery quality for our clients.VLabsis accountable for rapidly turning innovative experiments into production-ready deliverables at scale and embedding them into day-to-day operations. This team focuses on the highest-impact workflows, creating standardized, repeatable capabilities that can be deployed globally. Operating with a mandate for speed and measurable outcomes,VLabsworks alongside serviceline,product, and platform leaders.




About the Role




The Senior Manager, AI TestEngineeringis a hands-on role withinVLabsQuality Engineering, responsible forvalidatingthe performance, reliability, and integrity of AI-enabled solutions in production environments.This roleoperatesat the intersection of AI engineering and quality assurance, ensuring that outputs from LLMs, OCR pipelines, document classification models, and agentic workflows perform as expected at scale and meet defined business performance thresholds.Working closely with theProgrammeTest Manager and partnering with engineering, product, and delivery teams, this role translates AI testing strategy into executable frameworks, evaluation pipelines, and reusable assets embedded into the delivery lifecycle.




Success requires independent execution, strong technical depth, and the ability to proactivelyidentifyrisks, patterns, and performance gaps while enabling rapid, production-grade deployment of AI capabilities.




Key Responsibilities




AI Evaluation & Test Design



  • Translate AI testing strategy into executable test scenarios across LLM outputs, document classification, extraction accuracy, agent workflows, and edge cases




  • Design adversarial and boundary test inputs to expose hallucination, misclassification, and failure modes




  • Validate AI outputs for structure, consistency, accuracy, and production readiness against defined performance thresholds





Evaluation Engineering & Automation




  • Build reusable Python-based evaluation frameworks, including output validation, hallucination detection, and scoring mechanisms




  • Develop parameterized test scripts reusable across features, models, and releases




  • Implement AI-as-Judge frameworks, including prompt design, scoring logic, and calibration of evaluation reliability




  • Embed evaluation frameworks into CI/CD pipelines to support continuous testing and deployment





Drift Detection & Quality Monitoring



  • Design andoperatedrift detection frameworks using fixed baseline datasets and scheduled re-evaluation




  • Establish thresholds to distinguish acceptable variation from performance degradation




  • Enable release gating byidentifyingregressions prior to production deployment





Ground Truth & Data Quality



  • Build andmaintainground truth datasets in partnership with subject matter experts




  • Define standards for classification, extraction accuracy, and acceptable output characteristics




  • Continuously update datasets to reflect evolving business requirements and use cases





Workflow & Integration Testing



  • Test end-to-end agentic workflows,validatingdata integrity, error propagation, and fallback behavior




  • Perform API-level testing of AI pipeline endpoints using Python and Postman/Newman




  • Validate data persistence and integrity across system layers using SQL




  • Partner with engineering teams to ensure testability, observability, and system reliability





Standardization & Scaling



  • Define and scale standardized AI evaluation patterns and reusable quality frameworks acrossVLabs




  • Contribute to enterprise AI quality standards and referencearchitectures





Governance & Responsible AI



  • Ensure adherence to Responsible AI, data privacy, and governance requirements




  • Support auditability, traceability, and transparency of AI outputs and evaluation processes





Stakeholder Enablement



  • Translate evaluation results into actionable insights for engineering, product, and business stakeholders




  • Support decision-making on model readiness, release risk, and performance trade-offs




  • Proactivelyidentifyrisks, patterns, and systemic issues and escalate appropriately





Qualifications & Experience




Professional Experience



  • 7+ years in software testing, including 2–3 years focused on AI/ML-enabled systems in production environments




  • Proven experience designing and executing AI evaluation frameworks and quality strategies




  • Strongtrack recordbuilding ground truth datasets, drift detection systems, and scalable evaluation pipelines




  • Experience testing multi-step agentic workflows and AI-driven automation systems




  • Experienceoperatingin fast-paced, iterative delivery environments




  • Background in regulated or compliance-driven environments preferred





Technical Expertise



  • Advanced Python programming for evaluation frameworks, batch processing, and data analysis




  • Experience with LLM evaluation tools such asdeepeval, RAGAS,promptfoo, or similar




  • Strong capabilities in:




  • AI output validation, hallucination detection, and grounding checks




  • Drift detection frameworks and statistical evaluation methods




  • OCR, VLM, and document AI testing (classification, extraction, edge cases)




  • API testing using Python (requests/httpx) and Postman/Newman




  • SQL for data validation and pipeline integrity checks




  • Familiarity withLangChain,LlamaIndex, or similar frameworks




  • Experience with cloud AI platforms such as Azure AI Foundry or AWS Bedrock preferred





Operating Capabilities



  • Ability tooperateindependently in fast-moving, ambiguous environments




  • Strong analytical mindset with attention to detail and quality rigor




  • Ability to balance speed and rigor in AI evaluation and delivery cycles




  • Proactive communicator whoidentifiesrisks and drives resolution




  • Ability to translate technical findings into business-relevant insights





Education



  • Bachelor’s degreerequired



  • Advanced degree in Computer Science, Data Science, or related field preferred




Additional Information:



  • This job is based in our Bangalore office with the possibility of hybrid work mode



  • We are an equal opportunity employer that does not discriminate on the basis of any legally protected status



  • Please note, AI is used as part of the application process





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