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Senior GenAI / LLM Engineer (RAG, MLOps)

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Senior GenAI / LLM Engineer (RAG, MLOps)


Role: Senior Generative AI / LLM Engineer
Experience: 6–10 years (Apps Development / Systems Analysis / AI Engineering)
Location: Ireland
Type: Fixed term contract 1 year.


Must‑Have Skills

  • Strong foundations in GenAI, ML modeling, Data Science, Statistics, and AI fundamentals (NLP, Neural Networks, LLMs)
  • Hands‑on with major LLMs: Google Gemini, OpenAI, Anthropic Claude, Mistral, Llama + open‑source models
  • Critical: Deep, hands‑on experience building Retrieval‑Augmented Generation (RAG) pipelines (advanced RAG techniques + implementation)
  • Strong Prompt Engineering (prompt strategies, tuning, reusable templates) and agentic frameworks
  • Python (mandatory) with strong experience across: Pandas, NumPy, scikit‑learn, PyTorch/TensorFlow, Transformers, FastAPI, LangChain, LlamaIndex

Data / Integration

  • Experience integrating GenAI into enterprise apps using APIs, orchestration tools, and knowledge/graph concepts
  • Vector DB experience: PGVector, Pinecone, MongoDB Atlas, Neo4j (or similar)
  • Experience handling large‑scale unstructured data and high‑throughput processing

Deployment / MLOps

  • Critical: Proven experience deploying GenAI/LLM solutions to production
  • Strong MLOps knowledge: evaluation, monitoring, and robust deployment pipelines
  • CI/CD tools exposure: Jenkins, GitLab CI, Azure DevOps, ArgoCD
  • Container orchestration: Kubernetes or OpenShift

Other / Soft Skills

  • Strong problem solving, stakeholder collaboration, and ability to work independently on ambiguous problems
  • Working knowledge of Guardrails and methods to assess performance/safety of GenAI features


See also

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