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Metova, Inc.

AI Engineer

Posted 16 Days Ago
Remote
Hiring Remotely in United States
Senior level
Remote
Hiring Remotely in United States
Senior level
Design and supervise technical architectures for intelligent agents and LLMs, implement MCP and A2A multi-agent flows, integrate vector stores and RAG, collaborate with MLOps for continuous deployment, memory and context management, and work with product, UX, data, and backend teams to align solutions with business needs.
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A leading company in Mexico specializing in accounting software is looking for a highly skilled AI Engineer to join the team.

REQUIREMENTS:

  • 5 years of experience in artificial intelligence projects and 2 years in the implementation of autonomous agents or co-pilots.
  • Fluent technical English.
  • Experience working with business data in domains such as accounting, finance, payroll, billing, or ERP.
  • Experience working with vector stores (Chroma, Weaviate, Pinecone) and RAG architectures.

KNOWLEDGE AND SKILLS:

  • Handling frameworks such as LangChain, LlamaIndex, AutoGen, CrewAI, Semantic Kernel, or similar.
  • Practical knowledge of MCP and A2A protocols, use of tools, memory management, and conversation status.
  • Solid command of Python and experience with FastAPI, asyncio, Pydantic, and asynchronous architectures.
  • Knowledge of MLOps: CI/CD, Docker, Kubernetes, agent monitoring, and automated retraining.
  • Practical knowledge of other languages such as Golang, Java, or C# (.NET), especially in building high-performance components (Nice to Have).

RESPONSABILITIES:

  • Define, design, and supervise the technical architecture of solutions based on intelligent agents and LLMs, integrating tools such as LangChain, LlamaIndex, AutoGen, CrewAI, or equivalent frameworks.
  • Implement MCP (Model Context Protocol) and A2A (Agent-to-Agent) architectures to enable multi-agent coordination and autonomous flows within business environments.
  • Work with the MLOps team and execution environments that enable continuous agent updating and deployment, including memory management, context, and long-term planning.
  • Collaborate closely with product, UX, data, and backend teams to map business needs to intelligent agent architectures.

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