Staff/ Principa/ MTS Agentic AI Architect – Knowledge Engineering

Micron Technology, Inc

Hyderabad

On-site

INR 4,200,000 - 6,400,000

Full time

14 days+
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Benefits offered by this job

Medical, dental and vision plans
Paid time off

Job summary

Micron Technology, Inc. in Hyderabad, India seeks an experienced Staff/ Principal/ MTS Agentic AI Architect to lead enterprise AI architecture across cloud and on‑prem environments. You will design multi‑agent platforms, knowledge graphs, RAG/GraphRAG, and governance for responsible AI in manufacturing contexts.

Ideal candidate has 8+ years of software engineering or architecture experience, strong leadership, and hands‑on Claude ecosystem, MCP tooling, and hybrid cloud patterns.

Qualifications

  • Bachelor’s degree in CS, AI, Data Science, Software Engineering, or related field.
  • 8+ years in software engineering, AI/ML, enterprise architecture, platform engineering, or knowledge engineering.
  • AI & Knowledge Systems: Experience designing and delivering enterprise-scale Agentic AI, Generative AI, RAG/GraphRAG, and knowledge-driven solutions.
  • Hybrid Architecture: Experience designing solutions across AWS, GCP, on-premises systems, Kubernetes, and distributed enterprise platforms.
  • Claude / Agentic Tooling: Hands-on experience with Claude ecosystem, MCP-based integrations, and AWS AgentCore-style platforms.

Responsibilities

  • AI Strategy & Architecture: Define and drive enterprise architecture for Agentic AI, Knowledge Engineering, and AI-powered decision systems.
  • Agentic AI Platforms: Design scalable multi-agent architectures using memory, tool access, reasoning, and workflow orchestration.
  • Claude & AWS AgentCore Enablement: Architect agentic workflows leveraging Claude ecosystem and AWS AgentCore patterns.
  • MCP-Based Connectivity: Architect MCP-based access patterns for secure interaction with enterprise tools and data sources.
  • Knowledge Engineering: Architect knowledge fabrics, ontologies, metadata models, and knowledge graphs for use cases.
  • RAG & GraphRAG Solutions: Design retrieval, semantic search, grounding, and context engineering frameworks.
  • Knowledge Management: Develop LLM Wiki, knowledge governance, and knowledge lifecycle processes.
  • Semantic Integration: Implement entity resolution and cross-source knowledge integration across cloud and on-prem.

Skills

Claude Ecosystem
AWS AgentCore
A2A Systems
GCP Architecture
Hybrid Enterprise Integration
Knowledge Graphs
Graph Technologies
Vector Databases
LangChain / LlamaIndex
AI Governance & Responsible AI

Education

Bachelor's degree in Computer Science, AI, Data Science, or related field

Tools

Neo4j / AWS Neptune
Pinecone / Weaviate / Milvus
LangGraph / Claude Code-compatible tools
Jira / Confluence

Job description

Req. ID: JR109152 Staff/ Principa/ MTS Agentic AI Architect – Knowledge Engineering (Evergreen)

Our vision is to transform how the world uses information to enrich life for all.

Micron Technology is a world leader in innovating memory and storage solutions that accelerate the transformation of information into intelligence, inspiring the world to learn, communicate and advance faster than ever.

Responsibilities
  • AI Strategy & Architecture: Define and drive enterprise architecture for Agentic AI, Knowledge Engineering, and AI-powered decision systems across AWS, GCP, and on-prem environments.
  • Agentic AI Platforms: Design scalable multi-agent architectures using A2A collaboration, memory systems, reasoning frameworks, tool use, and workflow orchestration.
  • Claude & AWS AgentCore Enablement: Architect agentic workflows that leverage the Claude ecosystem, Claude Code-style engineering workflows, and AWS AgentCore-based agent runtime patterns.
  • MCP-Based Connectivity: Architect MCP-based access patterns that allow agents to securely interact with enterprise tools, APIs, knowledge repositories, data platforms, and engineering systems.
  • Knowledge Engineering: Architect enterprise knowledge fabrics, ontologies, taxonomies, metadata models, and knowledge graphs for engineering and manufacturing use cases.
  • RAG & GraphRAG Solutions: Design and optimize retrieval, semantic search, grounding, citation, graph traversal, and context engineering frameworks.
  • Knowledge Management: Develop LLM Wiki architecture, knowledge curation workflows, governance, and knowledge lifecycle processes.
  • Semantic Integration: Implement entity resolution, schema mapping, semantic interoperability, and cross-source knowledge integration across cloud and on-prem sources.
  • AI-Powered Reasoning: Build graph traversal, semantic reasoning, and context-aware agent capabilities across connected knowledge ecosystems.
  • Hybrid Platform Architecture: Design technology-agnostic AI solutions across AWS, GCP, on-premises compute, Kubernetes, distributed storage, and hybrid data platforms.
  • AI Governance: Establish standards for security, compliance, access control, observability, explainability, Responsible AI, and operational excellence.
  • Technology Leadership: Evaluate emerging technologies, define reference architectures, and drive AI platform adoption across engineering organizations.
  • multi-functional Collaboration: Partner with engineering, manufacturing, product, validation, data, and business teams to identify and deliver high-value AI solutions.
  • Innovation & Enablement: Lead proof-of-concepts, mentor technical teams, and promote standard processes in Agentic AI, Knowledge Engineering, and software architecture.
Expertise
  • Claude Ecosystem: Claude, Claude Code-style coding workflows, prompt/context design, agentic engineering workflows, skill-based automation, MCP-enabled tool access, and enterprise adoption patterns.
  • AWS AgentCore & AWS AI Architecture: AWS AgentCore, AWS-native and hybrid agent runtime patterns, compute, storage, serverless, large-scale data processing, managed graph or retrieval services, and secure enterprise deployment patterns.
  • Agentic AI & A2A Systems: A2A-based agent collaboration, ReAct, Plan-and-Execute, Reflection, Supervisor Patterns, Tool Use, Memory Systems, and Workflow Orchestration.
  • MCP & Tool Connectivity: MCP-based integration with enterprise tools, APIs, data sources, knowledge repositories, agent tools, and governed execution environments.
  • Generative AI & Retrieval: Large Language Models, RAG, GraphRAG, Semantic Search, Retrieval Optimization, Reranking, Grounding, and Context Engineering.
  • Knowledge Graphs & Semantic Systems: Ontology Engineering, Taxonomy Design, Semantic Modeling, Knowledge Representation, and Enterprise Knowledge Architecture.
  • Graph Technologies: Neo4j, AWS Neptune, RDF/OWL, Property Graphs, Graph Traversal, Graph Reasoning, Cypher, and SPARQL.
  • Vector Databases: Pinecone, ChromaDB, Weaviate, Milvus, Qdrant, FAISS, and similar retrieval platforms.
  • AI Development Frameworks: Python, LangChain, LlamaIndex, LangGraph, Claude Code-compatible workflows, and AI Orchestration Frameworks.
  • Document Intelligence & Knowledge Ingestion: JIRA, Confluence, SharePoint, Bitbucket, Wikis, Specifications, Technical Documents, and Enterprise Knowledge Repositories.
  • Embedding & Retrieval Pipelines: Embedding Models, Metadata Extraction, Vectorization, Indexing, Document Processing, and Retrieval Evaluation.
  • Entity Resolution & Semantic Integration: Schema Mapping, Master Data Alignment, Semantic Interoperability, and Cross-Source Knowledge Integration.
  • GCP Architecture: GCP-native and hybrid AI patterns, including BigQuery-centered analytics, data pipelines, feature engineering, and manufacturing data integration.
  • On-Premises Engineering Systems: Integration with local engineering repositories, validation environments, tester data, file systems, sensitive IP stores, and governed internal platforms.
  • Hybrid Enterprise Integration: APIs, Microservices, Event-Driven Architectures, Enterprise Integration Patterns, Observability, Security, Governance, and Policy Enforcement.
  • Proven ability to leverage AI‑assisted (vibe) coding techniques to improve efficiency or automate design and analysis methodologies
  • Leverage AI tools to automate the tools and workflow
  • Applying Artificial Intelligence in workflows to improve build efficiency
Qualifications
  • Education: Bachelor's degree in Computer Science, Artificial Intelligence, Data Science, Software Engineering, or a related technical field.
  • Experience: 8+ years in software engineering, AI/ML, enterprise architecture, platform engineering, or knowledge engineering.
  • AI & Knowledge Systems: Experience designing and delivering enterprise-scale Agentic AI, Generative AI, RAG/GraphRAG, and knowledge-driven solutions.
  • Hybrid Architecture: Experience designing solutions across AWS, GCP, on-premises systems, Kubernetes, and distributed enterprise platforms.
  • Claude / Agentic Tooling: Hands-on experience or strong working knowledge of the Claude ecosystem, agentic coding workflows, MCP-based integrations, and AWS AgentCore-style agent platforms.
  • Technical Leadership: Proven ability to lead architecture, technology selection, solution delivery, and organizational adoption of emerging technologies.
  • Communication & Collaboration: Strong stakeholder management, communication, problem-solving, and cross-functional leadership skills.
Preferred Domain Exposure
  • Industrial / Engineering Context: Experience applying AI and knowledge engineering to semiconductor, NAND, storage, firmware, validation, manufacturing, reliability, quality, product lifecycle, root cause analysis, or systems engineering environments.
Job Profile(s)

Product Development Engineer 5

Relocation level

(TBD)

Before Getting Started

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  • Hiring managers may view your performance appraisals, original resume, transcripts or other performance-related documentation in your personal file. This information will be held in confidence.
  • If you are selected to interview for a position, you must notify your direct supervisor before participating in the interview process.
Benefits

As a world leader in the semiconductor industry, Micron is dedicated to your personal wellbeing and professional growth. Micron benefits are designed to help you stay well, provide peace of mind and help you prepare for the future.

We offer a choice of medical, dental and vision plans in all locations enabling team members to select the plans that best meet their family healthcare needs and budget.

Micron also provides benefit programs that help protect your income if you are unable to work due to illness or injury, and paid family leave.

Additionally, Micron benefits include a robust paid time-off program and paid holidays.

For additional information regarding the Benefit programs available, please see the Benefits Guide posted on Benefits | Micron Technology, Inc

Equality & Diversity

Micron is proud to be an equal opportunity workplace and is an affirmative action employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, age, national origin, disability, protected veteran status, gender identity or any other factor protected by applicable federal, state, or local laws.

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