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AI Engineering Architect

Infosys · BANGALORE
Posted June 30, 2026 via Infosys

AI Architecture & Engineering

• Define and own AI reference architectures for generative AI, agentic systems, and AI augmented applications

• Architect scalable solutions using LLMs, multi agent systems, orchestration frameworks, and AI pipelines

• Design AI platforms supporting model serving, prompt management, RAG, and workflow orchestration

• Establish architectural standards for performance, scalability, reliability, and cost efficiency

Platform Engineering & Integration

• Build reusable AI components for LLM integration, vector search, embeddings, and inference services

• Enable secure and scalable deployment using Kubernetes, serverless platforms, and CI/CD pipelines

• Integrate AI capabilities into enterprise systems using APIs, SDKs, and event driven architectures

• Collaborate with QE teams to embed AI into test automation, test data generation, and intelligent validation

Engineering Governance & Quality

• Define architectural guardrails for model lifecycle, versioning, monitoring, and rollback

• Ensure adherence to non functional requirements including performance, observability, and fault tolerance

• Leverage observability tools to monitor model performance and drift

• Review designs and implementations for architectural compliance and code quality

• Mentor engineers and architects on AI engineering best practices

Core Platforms, Frameworks & Tooling

• LLM and foundation model platforms (e.g., AWS Bedrock, Azure OpenAI, Vertex AI)

• Agentic AI and orchestration frameworks (LangChain, LangGraph, CrewAI, AutoGen, Google ADK or equivalent)

• Vector databases and search technologies (OpenSearch, Pinecone, FAISS, Weaviate)

• Model lifecycle and deployment tooling (Kubernetes, containers, serverless runtimes)

• CI/CD and MLOps tooling for AI pipelines (GitHub Actions, Azure DevOps, Jenkins)

• Observability and monitoring tooling for AI systems (OpenTelemetry, Prometheus, Grafana)

Client Orientation & Leadership

• Partner with product and engineering teams to identify AI opportunities and shape roadmaps

• Support client workshops, RFPs, and solution presentations

• Mentor engineers on AI/ML/Gen AI best practices and emerging technologies

• Translate complex AI concepts into business-friendly narratives.

• 13+ years of experience in software engineering with 3+ years in AI with strong architecture ownership

• Proven experience designing and implementing enterprise-scale AI engineering or MLOps platforms

• Strong hands on experience with LLMs, prompt engineering, RAG, and agent frameworks

• Proficiency in Python, AI frameworks, and cloud-native AI services

• Experience in Kubernetes, CI/CD, and secure deployment of AI models

• Experience integrating AI capabilities into enterprise scale systems

Good to Have Skills

• Experience with multi agent orchestration and autonomous workflows

• Knowledge of model observability and monitoring tooling

• Exposure to QE platforms, test automation frameworks, or AI assisted testing

• Domain experience in regulated industries such as BFSI, Healthcare, Telecom

• Cloud and AI certifications
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