Generative AI / Machine Learning Engineer – LLM, RAG & AI Agents
150 - 170 PLN/ godz.B2B
MidFull-time·B2B
#448838·Dodano wczoraj·1
Źródło: nofluffjobs.comTech Stack / Keywords
Machine learningAINLPPythonObject-oriented programmingAzurePyTorchNumPyMicroservice architectureCommunication skillsComputer vision
Firma i stanowisko
The position is offered by Square One Resources for a project focused on developing advanced AI solutions such as chatbots, voicebots, AI agents, and Talk-to-Data systems. The role involves the design and implementation of end-to-end Generative AI solutions including RAG pipelines and LLM integration, along with pre-sales activities and technical architecture contributions.
Wymagania
- Strong experience in Machine Learning and Generative AI, particularly with large language models (LLMs), NLP, or multimodal models.
- Good understanding of Deep Learning concepts.
- Strong Python programming skills and knowledge of object-oriented programming.
- Working knowledge of SQL and vector databases.
- Hands-on experience with Azure or Google Cloud Platform.
- Practical knowledge of PyTorch, NumPy, Hugging Face, LangChain, and LangGraph.
- Experience integrating OpenAI or Gemini APIs.
- Proven experience designing and implementing RAG solutions.
- Hands-on experience with MCP servers and clients for LLM-based agents.
- Experience with microservice architectures and AI application deployment.
- Ability to translate business needs into technical solutions.
- Strong analytical, problem-solving, and communication skills.
Nice to have:
- Experience with Databricks.
- Commercial experience delivering Generative AI, NLP, or Computer Vision projects.
- Experience with multimodal AI and production-grade AI agents.
- Experience in technical consulting or pre-sales.
- Ability to mentor and guide junior engineers.
Obowiązki
- Design and develop end-to-end Generative AI applications including chatbots, voicebots, and AI agents.
- Build and optimize retrieval-augmented generation (RAG) pipelines involving vector databases, hybrid search, reranking, and retrieval evaluation.
- Develop LLM-based solutions using LangChain, LangGraph, and LlamaIndex.
- Select, fine-tune, and optimize large language models using techniques such as LoRA, QLoRA, and SFT.
- Implement LLM integrations with external tools, APIs, and data sources using Model Context Protocol (MCP).
- Develop and evaluate prompting strategies, guardrails, and model performance.
- Translate business requirements into technical solutions and define project success metrics.
- Support AI solution deployment and project delivery.
- Contribute to technical architecture and pre-sales activities.
- Provide technical guidance and support to junior team members.
SQUARE ONE RESOURCES
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