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Senior GenAI Engineer

Summary

Build and improve production-grade GenAI applications using LangGraph/LangChain, integrating LLMs with enterprise systems and APIs. Core tech includes Python/Java, RAG, agentic workflows, and Kubernetes.

Responsibilities:

  • Build and improve GenAI applications using frameworks such as LangGraph, LangChain or similar orchestration tools.
  • Work with open weight models, hosted LLMs and model serving patterns.
  • Develop agentic workflows, retrieval augmented generation, tool calling and prompt orchestration.
  • Integrate GenAI applications with enterprise systems, APIs, data sources and operational platforms.
  • Engineer solutions for production quality, including logging, tracing, evaluation, fallback behaviour and troubleshooting.
  • Strong hands on experience building production grade GenAI applications.
  • Practical experience with LangGraph, LangChain, agentic workflows, RAG and tool calling.
  • Understanding of open weight models and how to integrate them into real applications.
  • Ability to challenge weak designs and propose better ones.
  • Strong engineering discipline around reliability, testing, observability and maintainability.
  • Ability to work across application, data, platform, security and infrastructure teams.

Requirement:

  • 10 or more years of software engineering experience, preferably with recent hands on experience in GenAI application development.
  • Proven experience building production grade GenAI applications, not only prototypes, experiments or demos.
  • Strong hands on experience with LangGraph, LangChain or similar orchestration frameworks.
  • Practical understanding of RAG, agentic workflows, tool calling, prompt orchestration and context management.
  • Experience integrating LLMs into real applications using APIs, backend services and enterprise data sources.
  • Experience with open weight models or strong interest backed by hands on experimentation.
  • Strong backend engineering skills using Python, Java or similar languages.
  • Experience with observability, logging, tracing and troubleshooting for GenAI or backend applications.
  • Familiarity with containerised deployment environments such as Kubernetes or OpenShift.
  • Ability to write clean, maintainable and testable code.
  • Strong analytical, debugging and troubleshooting skills.
  • High ownership, high curiosity and genuine interest in building useful AI products.

See also

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