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Nexaminds

Lang Chain Deployment AI Engineer

RemoteMexico, Canada only
Published
Role
AI / ML
Salary not disclosed
Check eligibility

Open to MX, CA only. Set where you work from to check your eligibility.

Core skills

LangChainLangGraphRAG

Required skills

Python/JavaScript/TypeScriptDockerKubernetesPinecone/Weaviate/Milvus/pgvector/PostgreSQL/Elasticsearch/OpenSearch/Redis/Azure AI SearchAWS/Microsoft Azure/GCPLangSmith

Optional skills

LangSmithFleetDeep AgentsAmazon BedrockAzure AI FoundryAzure OpenAIGoogle Vertex AIEKS

What you'll do

  • Translate approved LangChain and agentic AI architectures into maintainable, secure, scalable, and production-ready applications.
  • Build LLM-powered assistants, copilots, chatbots, document-processing solutions, decision-support tools, and automated workflows.
  • Develop deterministic and agentic workflows using LangGraph, including state management, routing, tool use, retries, checkpoints, memory, streaming, and failure recovery.
  • Design and implement RAG pipelines, including ingestion, chunking, embeddings, indexing, retrieval, reranking, grounding, citations, and access controls.
  • Deploy AI applications using Docker, Kubernetes, serverless, or managed cloud runtimes, supporting environment promotion, rollback, autoscaling, resiliency, and disaster recovery.

What they require

  • Bachelor’s degree in Computer Science, Engineering, Information Systems, or a related discipline, or equivalent practical experience.
  • Strong professional software engineering experience with Python and/or JavaScript/TypeScript, including API development, asynchronous processing, testing, packaging, dependency management, and code review.
  • Hands-on experience building production-grade AI agents using LangChain and LangGraph, including chains/runnables, tools, structured outputs, stateful workflows, streaming, persistence, and error handling.
  • Experience developing and deploying LLM-powered applications using commercial model APIs such as OpenAI, Anthropic, Google, or cloud-hosted equivalents, and/or open-source models.
  • Strong understanding of Retrieval-Augmented Generation (RAG), including document ingestion, chunking, embeddings, vector search, metadata filtering, reranking, grounding, and citation patterns.

Benefits

  • Stock options
  • Remote work options
  • Flexible working hours
  • Benefits above the law
  • Mentorship and tons of opportunities to learn and level up

Nexaminds is on a mission to redefine industries with AI, delivering AI solutions focused on innovation, collaboration, and ethical practices.

AIStartup

Details

Visa sponsorshipNo
Salary not disclosed