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AI Engineer LLM / VLM

Job Description - AI Engineer LLM / VLM

Role Overview


We are looking for an AI Engineer specializing in Large Language Models (LLMs) and Vision-Language Models (VLMs) to design, develop, and deploy production-grade AI solutions. The ideal candidate should have strong experience with LLM/VLM architectures, prompt engineering, RAG, fine-tuning, multimodal AI, and model serving.


Key Responsibilities



  • Develop and deploy AI applications using LLMs and VLMs.

  • Build RAG pipelines involving document ingestion, chunking, embeddings, retrieval, reranking, and generation.

  • Work with models such as GPT, Claude, Gemini, Llama, Mistral, Qwen, and multimodal/VLM models.

  • Develop multimodal solutions involving text, images, PDFs, charts, tables, and documents.

  • Perform prompt engineering, supervised fine-tuning, LoRA/QLoRA, and model evaluation.

  • Build AI agents and tool-calling workflows where appropriate.

  • Optimize inference for latency, throughput, memory, and cost.

  • Develop APIs and production services using Python, FastAPI, Docker, and cloud platforms.

  • Implement evaluation frameworks to measure accuracy, hallucination, relevance, latency, and safety.

  • Collaborate with ML engineers, software engineers, and product teams to take prototypes into production.


Required Skills



  • Strong Python programming and software-engineering fundamentals.

  • Hands-on experience with LLMs and/or VLMs.

  • Strong understanding of Transformers, attention mechanisms, tokenization, embeddings, and inference.

  • Experience with PyTorch and Hugging Face Transformers.

  • Experience building RAG systems and vector-search solutions.

  • Knowledge of prompt engineering and LLM evaluation.

  • Experience with APIs, REST services, Git, Docker, and CI/CD.

  • Familiarity with vector databases such as FAISS, Milvus, Pinecone, Weaviate, or pgvector.

  • Understanding of cloud AI infrastructure, preferably AWS/Azure/GCP.


VLM / Computer Vision Skills



  • Experience with multimodal models such as Qwen-VL, LLaVA, Gemini, GPT vision models, or similar.

  • Understanding of image preprocessing and document/image understanding.

  • Experience with OCR, document intelligence, image classification, object detection, or visual question answering is a plus.

  • Ability to build pipelines combining vision + language + retrieval.


 

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