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Senior Python & AI Developer

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Discussion


  • Develop LLM-based applications and services using Python

  • Design and implement RAG solutions

  • Index and retrieve knowledge using vector databases

  • Develop agent architectures and multi-agent systems

  • Build pipelines and applications with LangChain and LangGraph

  • Implement observability for AI applications using LangFuse or similar tools

  • Integrate AI solutions with APIs, microservices, and existing systems

  • Collaborate with cross-functional teams to transform business needs into AI solutions

  • Ensure quality, scalability, and adherence to development best practices

  • Participate in the active Talent Pool and confirm availability every 90 days


Requirements



  • Develop LLM-based applications and services using Python

  • Design and implement RAG (Retrieval-Augmented Generation) solutions

  • Work with vector databases for knowledge indexing and retrieval

  • Develop agent-based architectures and multi-agent systems

  • Build pipelines and applications with LangChain and LangGraph

  • Implement observability for AI applications using tools such as LangFuse

  • Integrate AI solutions with APIs, microservices, and existing systems

  • Python

  • LangChain and LangGraph

  • RAG (Retrieval-Augmented Generation)

  • Agent architectures and multi-agent systems

  • Experience with Pinecone, Weaviate, Qdrant, Chroma, or similar technologies

  • Chunking, embeddings, and reranking strategies

  • LangFuse or similar tools

  • REST APIs and microservices integration

  • Git and agile methodologies (Scrum, Kanban)

  • Completed higher education degree

  • Ability to communicate AI model limitations to non-technical audiences

  • Experience in the banking, financial services, or insurance sectors is a plus

  • Experience evaluating and quality-testing LLM outputs is a plus

  • Experience with fine-tuning, model serving, or open-source models is a plus

  • Knowledge of AWS, Azure, or GCP and AI application deployment is a plus

  • Experience handling sensitive data, LGPD, and compliance requirements is a plus


Core Competencies


Demonstrates expertise in developing LLM-based applications using Python, designing RAG solutions, and integrating AI solutions with APIs and microservices. Proficient in building applications with LangChain and LangGraph while ensuring quality and scalability in AI deployments.


Highest-signal resume keywords



  • LLM-Based Application Development

  • RAG (Retrieval-Augmented Generation) Solutions

  • LangChain and LangGraph

  • Vector Database Experience

  • AI Application Observability


ATS Optimization Keywords


Hard Skills



  • Python

  • RAG (Retrieval-Augmented Generation)

  • Agent Architectures

  • Multi-Agent Systems

  • Chunking

  • Embeddings

  • Reranking Strategies

  • REST APIs

  • Microservices Integration

  • Quality Testing of LLM Outputs


Soft Skills



  • Communication of AI Model Limitations


Certifications & Qualifications



  • Completed Higher Education Degree


Industry Keywords



  • Banking

  • Financial Services

  • Insurance

  • Sensitive Data Handling

  • LGPD Compliance


Tools & Technologies



  • LangFuse

  • Pinecone

  • Weaviate

  • Qdrant

  • Chroma

  • Git

  • Agile Methodologies

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