Kyndryl

AIAgentDeveloper

Hoofddorp, North Holland, Netherlands FULL TIME Remote Friendly
The Brief

“AI Agent Developer at Kyndryl. Skills: AI agents, large language model (LLM) applications, LangGraph, AutoGen, RAG pipelines, LLM integration, LLM evaluation, Docker, Kubernetes, Azure. Design and build production-ready AI agents with advanced planning, reasoning, and autonomous tool‑use capabilities. Architect stateful, multi-step agent workflows using modern orchestration frameworks such as LangGraph or AutoGen”

What You'll Achieve.

AI systems you build are trusted in production: observable, safe, cost‑aware, and resilient; Agent workflows are modular, explainable, and easy for teams to extend and maintain; RAG pipelines consistently deliver accurate, relevant, and timely results across diverse use cases; Engineering standards and patterns you establish accelerate delivery and reduce long‑term technical risk; Less experienced engineers grow through your guidance, code reviews, and technical leadership

Industry & Context.

Problems you'll solve

solve real enterprise problems at scale; planning; reasoning; memory; tool‑use capabilities

What They're Looking For.

Must Have

7-10+ years in software engineering, Python expertise, Proven experience building agent-based or autonomous systems in production (not prototypes), experience with LLM APIs (OpenAI) including function calling and orchestration, Hands-on experience with frameworks such as LangChain, LangGraph, AutoGen, or CrewAI, Deep understanding of RAG architectures, vector databases (e. g. , Pinecone, Weaviate, Azure AI Search), and retrieval optimization, knowledge of LLM evaluation, prompt optimization, and safety techniques, Experience with containerization (Docker, Kubernetes), Experience with cloud platforms (Azure preferred), Familiarity with backend frameworks (e. g. , FastAPI), Familiarity with microservices architecture

Nice to Have

certify in all four major platforms

What You'll Do.

Design and build production-ready AI agents with advanced planning

and autonomous tool‑use capabilities

multi-step agent workflows using modern orchestration frameworks such as LangGraph or AutoGen

Build and productionize RAG pipelines

Integrate LLMs with enterprise systems by leveraging APIs

and external data sources

Continuously optimize RAG and agent performance

and guardrail frameworks for LLM systems

and scale AI applications using Docker

and Azure cloud services

Drive technical design decisions

Define best practices for agentic AI development

How You'll Work.

Team & Collaboration

mentoring engineers; code reviews; technical leadership

Free ATS check

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