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AI-Assisted Quality Engineering

AI-augmented test automation for enterprise systems, and specialist AI/ML & GenAI validation for the intelligent systems you are building — delivered by a team with 40% defect reduction and 75% regression savings across healthcare, insurance, retail, and government programs.

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Core Capability

AI-Augmented Test Automation

Playwright-based enterprise UI automation combined with GitHub Copilot and Claude-assisted test generation — delivering faster, more reliable, and more maintainable test coverage across every sprint. Our AI-augmented approach reduces manual scripting effort, accelerates coverage expansion, and embeds quality gates directly into CI/CD pipelines so every deployment is validated automatically.

Playwright Framework Architecture — POM-based, sharded, CI/CD-integrated Playwright suites (TypeScript/Python) across Chromium, Firefox, and WebKit — built for low flakiness, high stability, and rapid regression execution in Agile/SAFe programs.

AI-Assisted Test Generation — GitHub Copilot and Claude-assisted test case generation, edge-case discovery, and script maintenance — cutting manual scripting effort and accelerating coverage across complex enterprise and AI-enabled applications.

CI/CD Quality Gates — Automated quality gates integrated into GitHub Actions, Jenkins, Azure DevOps, and GitLab CI — enabling PR-level validation, nightly regression, and release readiness signals without manual intervention.

PlaywrightGitHub CopilotClaudeTypeScriptPythonCI/CD Gates
40%
Fewer production defects
75%
Regression effort saved
30%
Faster release cycles
Use Case — National Digital Health Platform
AI-Assisted QE for a Healthcare Platform Serving Millions of Members

A national health plan's digital platform serving millions of members across telehealth, claims, benefit verification, and Virtual Primary Care required rapid automation coverage expansion under peak demand. AI-assisted test generation accelerated coverage across iOS, Android, and web. CI/CD-integrated quality gates ensured every deployment maintained the system stability required for uninterrupted healthcare access — while simultaneously validating AI/ML-driven clinical decision support components for prediction consistency and clinical appropriateness across diverse patient populations.

Uninterrupted healthcare access maintained — AI/ML clinical features validated at scale
Key Deliverables
Playwright framework
AI-generated test suites
Mobile test coverage
CI/CD quality gates
API automation suite
Regression optimization
QA metrics dashboard
Release readiness reports
Core Capability

AI/ML, GenAI & Agentic AI Validation

Specialist validation practice for AI systems — LLM output testing, RAG pipeline validation, Agentic AI workflow testing, ML model evaluation, and enterprise automation testing. We deliver structured validation frameworks that ensure AI systems are accurate, fair, compliant, and production-ready — grounded in real delivery across insurance underwriting, healthcare decision support, workforce management, and government systems.

LLM & GenAI Output Validation — Hallucination detection, prompt adherence, context relevance, semantic accuracy, toxicity, bias and fairness testing, and guardrail compliance — using RAGAS, DeepEval, and automated evaluation pipelines integrated into CI/CD for continuous model quality assurance.

AI/ML Model Testing — Model behavior validation, output accuracy, precision/recall/F1, training and inference pipeline testing, model regression after updates, and model drift monitoring — delivered across insurance underwriting models, workforce AI systems, and healthcare decision support platforms.

Agentic AI & RAG Pipeline Validation — Tool-calling accuracy, planner-executor loop testing, multi-agent state management, context retention, RAG retrieval quality, faithfulness, and answer relevance — ensuring AI agents behave predictably and safely in regulated production environments.

RAGASDeepEvalLLM TestingAgentic QAModel DriftBias TestingRAG Validation
Use Case — Top-Tier U.S. Life Insurance Company
LLM Validation & Responsible AI QE for Insurance Underwriting Platform

A top-tier U.S. life insurance company deploying a GenAI-powered policy advisory platform needed quality engineering across two challenges: regression testing a complex enterprise UI suite, and validating LLM outputs for hallucination risk, regulatory compliance, and demographic fairness. RV Tech established a Playwright automation framework with AI-assisted test generation for the UI layer, and a RAGAS-based LLM evaluation pipeline measuring hallucination rate, prompt adherence, and bias across policy recommendation outputs — integrated into a single CI/CD quality gate protecting every production deployment.

60% flakiness reduction in UI suite + automated LLM quality gates in CI/CD pipeline
Key Deliverables
LLM evaluation pipeline
Bias & fairness report
RAG validation suite
Model drift monitoring
Agentic workflow tests
CI/CD AI quality gates
Validation methodology
AI QA metrics dashboard

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