Agentic AI Architect(Ecommerce/Retail)
Quick Overview
Job Description
Strong AI Engineering Leader for Agentic SDLC Transformation (Large Retail Client)
A seasoned Engineering Leader/Architect with 15+ years of experience in enterprise software delivery, AI engineering, and digital transformation, capable of leading the adoption of Agentic SDLC across a large retail organization. The individual should combine deep technical expertise with strong stakeholder management skills and a proven track record of delivering large-scale technology programs.
Key Responsibilities
- Lead end-to-end Agentic Software Development Lifecycle (SDLC) implementation, integrating AI agents across requirements, design, development, testing, deployment, and operations.
- Building and governing AI-powered developer productivity solutions at enterprise scale.
- Define engineering standards, guardrails, governance, security, and responsible AI practices. Agentic SDLC Strategy & Transformation
- Define and lead the enterprise roadmap for Agentic SDLC adoption.
- Implement AI-assisted workflows across requirements, design, coding, testing, security, deployment, and operations.
- Drive engineering productivity improvements through AI-powered development platforms and tools.
- Establish best practices, governance frameworks, and operating models for AI-driven engineering.
- Define engineering standards, quality metrics, and delivery excellence frameworks.
- Design solutions utilizing LLMs, RAG architectures, autonomous agents, and AI orchestration platforms.
- Establish responsible AI practices, guardrails, and compliance mechanisms.
- Client & Stakeholder Management
- Support business capabilities across various spectrum of Retail Industry like Digital Commerce, Omnichannel Retail, Supply Chain & Logistics etc.
Mandatory Technical Stack
- Cloud-native architectures (Azure/AWS/Google Cloud Platform)
- Microservices and API ecosystems
- DevSecOps and CI/CD
- Platform Engineering
- SRE and Observability
- Experience in GenAI, Agentic AI frameworks, LLMs, RAG architectures, and AI-assisted engineering platforms.
Preferred Technical Stack
- Python, Java, .NET, TypeScript
- Azure OpenAI / OpenAI / Anthropic ecosystems
- LangChain, LangGraph, Semantic Kernel, AutoGen, CrewAI or similar agent frameworks
- GitHub Copilot, Azure DevOps, GitHub Actions
- Kubernetes, Docker, Terraform
- Vector databases and knowledge platforms
Skills
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