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Senior Machine Learning Engineer (LLMs)

Open 31d reposted 7× · 7 open copies

At deepsense.ai, you won’t just build AI solutions – you’ll shape how companies around the world use them.

By joining us, you’ll:

  • Work with partners like OpenAI, NVIDIA, Anyscale, LangChain, Crusoe, and ElevenLabs.
  • Explore and apply the newest tech: LLMs & RAG, MLOps, Edge Solutions, Computer Vision, Predictive Analytics.
  • Tackle challenges in software & tech, pharma & healthcare, manufacturing, retail, telecoms & media.
  • Contribute to open-source projects – just take a look at our latest solution, ragbits, an agentic RAG framework with over 1.6k stars on GitHub.

And the best part of working at deepsense.ai?

  • Spread your wings with clear career paths, technical or leadership.
  • Collaborate with 100+ AI experts with 15+ years of applied AI experience, as well as PhD-level researchers with academic backgrounds.
  • Tap into domain expertise and knowledge sharing whenever you need it.

The ideal candidate:

  • Has 4–5+ years of experience in ML engineering and working with models in production environments.
  • Brings hands-on expertise with Large Language Models (LLMs) and Generative AI, including integration and inference optimization (latency, cost, scalability).
  • Is familiar with frameworks and tools for building and orchestrating LLM pipelines (LangChain, LlamaIndex, RAG, agent frameworks).
  • Can design and implement end-to-end ML/LLM pipelines, from data preparation and training/fine-tuning to production-grade APIs.
  • Has experience with cloud platforms (AWS, GCP, Azure) and their AI/ML services (e.g., SageMaker, Vertex AI, Azure ML).
  • Has worked with SQL, NoSQL, and vector databases (Pinecone, FAISS, Weaviate).
  • Is fluent in Python and experienced with ML frameworks (PyTorch, TensorFlow, Hugging Face).
  • Knows how to deploy and monitor models (MLOps: CI/CD for models, logging, observability, quality monitoring).
  • Communicates clearly and can collaborate effectively with both Data Scientists and product/client teams.
  • Bonus: experience in prompt engineering and building simple AI user interfaces (Streamlit, Gradio).

See also

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