Senior GenAI

Adroit India
Hyderabad, Telangana, India

We are looking for a hands-on Senior AI/GenAI Architect who can own the architecture and technical design of production-grade AI solutions from concept and PoC through development, deployment, and operationalization.

The ideal candidate should have a strong software engineering and architecture foundation, combined with deep hands-on experience in Generative AI, Agentic AI, LLM applications, RAG, AI engineering and AI SDLC.

This is not primarily a delivery/program management or business AI consulting role. We are looking for someone who can demonstrate architectural depth through actual implementations, technical design decisions, code, GitHub/projects, PoCs and production systems.

Key Responsibilities

  • Own end-to-end architecture for GenAI and Agentic AI solutions.
  • Translate business/technical requirements into scalable, secure and production-ready AI architectures.
  • Design and implement:
  • LLM-based applications
  • RAG architectures
  • Agentic workflows
  • Multi-agent systems
  • Tool/function calling
  • Memory and context management
  • Human-in-the-loop workflows
  • Define architecture across the complete AI SDLC — development, testing, evaluation, deployment, monitoring and continuous improvement.
  • Design AI systems that integrate with enterprise applications through APIs, microservices and event-driven architectures.
  • Make architectural decisions around:
  • Model selection
  • RAG vs fine-tuning
  • Embeddings/vector databases
  • Agent orchestration
  • Framework selection
  • Cloud/platform selection
  • Cost, latency, scalability and performance
  • Establish LLMOps/MLOps and AI observability practices including evaluation, tracing, monitoring, quality measurement and feedback loops.
  • Define security, governance, Responsible AI and data-protection controls for AI applications.
  • Build PoCs/MVPs and reusable frameworks/accelerators to validate architectural decisions.
  • Work closely with AI engineers and developers and provide hands-on technical guidance and code-level direction.
  • Conduct architecture/design reviews and challenge technical decisions where required.
  • Mentor engineers on AI engineering, system design and productionization.Must-Have Skills
  • 12+ years of software engineering / architecture experience.
  • Strong hands-on experience in Generative AI / LLM application development.
  • Proven experience as an AI Architect / Solution Architect / Technical Architect, not only delivery leadership.
  • Strong Python development experience.
  • Deep understanding of:
  • LLMs
  • RAG
  • Embeddings
  • Vector databases
  • Prompt engineering
  • Agentic AI
  • Agent orchestration
  • Tool calling
  • AI evaluation
  • Hands-on experience with frameworks such as LangChain, LangGraph, LlamaIndex, Semantic Kernel, AutoGen, CrewAI or equivalent.
  • Strong understanding of system architecture and distributed systems:
  • Microservices
  • REST APIs
  • Event-driven architecture
  • Authentication/security
  • Scalability
  • High availability
  • Experience designing production-grade AI applications, not only PoCs or business use-case assessments.
  • Experience with AI SDLC / LLMOps, including CI/CD, evaluation, deployment, monitoring and observability.
  • Experience integrating AI solutions with enterprise systems and data platforms.
  • Strong understanding of cloud AI services such as Azure OpenAI, AWS Bedrock or GCP Vertex AI.
  • Ability to create and explain architecture diagrams, technical design documents and architectural trade-offs.Strongly Preferred
  • Experience building reusable GenAI platforms/frameworks, rather than isolated client use cases.
  • Experience with:
  • MCP
  • Multi-agent architecture
  • AI coding agents
  • Model gateways
  • Guardrails
  • LLM evaluation frameworks
  • Prompt/version management
  • AI observability
  • Experience implementing GenAI directly into software development workflows / SDLC.
  • Active GitHub or demonstrable personal/project work showing actual architecture and implementation depth.
  • Experience taking AI solutions from PoC → MVP → production.
  • Experience with enterprise security, governance and Responsible AI.

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