LLM Engineer

Bluebird • United Kingdom
Remote
This Job is No Longer Active This position is no longer accepting applications
AI Summary

Join Bluebird's small, highly technical team as an LLM Engineer to take ownership of language-model systems end-to-end. Design, build, and scale LLM-powered applications in Python, including RAG pipelines, orchestration logic, and multi-model workflows. Collaborate with senior researchers and experienced engineers to solve meaningful problems with production-grade AI.

Key Highlights
LLM system ownership
Python development
RAG pipeline design
Collaboration with senior researchers
Technical Skills Required
Python RAG architectures PyTorch Hugging Face FastAPI Kubernetes Cloud platforms Multi-GPU environments
Benefits & Perks
Competitive salary up to €110,000
Close collaboration with senior researchers and experienced engineers
Ownership of production LLM systems at scale

Job Description


Location: London


Our client is a small, highly technical team building real-world LLM-powered systems and agentic applications - tools that are already in the hands of users, not just demos or experiments.


They focus on solving meaningful problems with production-grade AI, combining strong engineering fundamentals with thoughtful experimentation. The team is pragmatic, product-oriented, and deeply cares about clean code, fast iteration, and systems that scale.


They’re now looking for an LLM Engineer to take ownership of language-model systems end to end - from training and fine-tuning through to evaluation and deployment.


🔥 What You’ll Get

  • Competitive salary - up to €110,000 salary, depending on experience
  • Ownership of production LLM systems at scale, with the freedom to work across the full ML lifecycle on top of strong, production-ready infrastructure
  • Close collaboration with senior researchers and experienced engineers


🧠 Your Impact

  • Own the full ML lifecycle — training, fine-tuning, evaluation, and deployment of LLM systems into production
  • Design, build, and scale LLM-powered and agentic applications in Python, including RAG pipelines, orchestration logic, and multi-model workflows using modern LLM APIs (OpenAI, Anthropic, Gemini)
  • Deploy and operate models on production-grade infrastructure, including Kubernetes, cloud platforms, and multi-GPU environments


✅ What We’re Looking For

  • Strong Python engineering fundamentals with hands-on experience building and deploying LLM-based systems in production
  • Solid understanding of RAG architectures, embeddings, evaluation techniques, and modern LLM tooling (e.g. PyTorch, Hugging Face, FastAPI)
  • Experience working with production ML infrastructure, including model deployment, monitoring, and iteration


🚀 What Will Make You Stand Out

  • Experience with agentic workflows, tool calling, or multi-step LLM systems
  • Familiarity with ML observability and experimentation tools (MLflow, W&B)
  • Experience working with computer vision or multi-modal AI systems
  • Comfort deploying models on cloud infrastructure (AWS/GCP, Kubernetes)


Ready to build LLM systems that power real products used at scale - not hype-driven experiments?


Apply now to work on pragmatic, production-first AI with real users and real impact.


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