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Agentic AI Engineer

Job in Burlingame, San Mateo County, California, 94012, USA
Listing for: Zenotis Infotech
Full Time position
Listed on 2026-10-05
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Cloud Engineer - Software, Backend Developer
Salary/Wage Range or Industry Benchmark: 180000 - 240000 USD Yearly USD 180000.00 240000.00 YEAR
Job Description & How to Apply Below

We are looking for an experienced Agentic AI Engineer to build and support production-ready AI systems, LLM infrastructure, and autonomous AI agents.

The ideal candidate will have a strong Software/Backend Engineering background and have transitioned into Generative AI / Agentic AI development.

You will work closely with AI and engineering teams to build scalable, reliable, and high-performance AI platforms.

Key Responsibilities
  • Build and deploy LLM and Generative AI applications in production.
  • Develop and scale AI agents and multi-agent workflows.
  • Work with frameworks such as Lang Chain, Lang Graph, and CrewAI.
  • Build and optimize LLM serving and inference using tools such as vLLM, Triton, or Ray Serve.
  • Manage AI workloads using Kubernetes, Docker, and cloud platforms.
  • Build RAG pipelines, memory systems, and integrations with vector databases.
  • Implement monitoring, logging, tracing, and evaluation for AI/LLM applications.
  • Develop CI/CD pipelines and internal tools for deploying AI models and agents.
  • Troubleshoot performance, scalability, GPU, and production issues.
Required Skills
  • 7–10 years of software, backend, ML, or infrastructure engineering experience.
  • Strong background in Software/Backend Engineering.
  • Experience with LLMs / Generative AI / Agentic AI.
  • Hands‑on experience with Lang Chain, Lang Graph, or CrewAI.
  • Experience with Kubernetes and Docker.
  • Experience with AWS, GCP, or Azure.
  • Experience with LLM serving tools such as vLLM, Triton, or Ray Serve.
  • Strong understanding of distributed systems and scalable infrastructure.
Preferred Skills
  • Vector databases:
    Pinecone, Milvus, or Qdrant
  • RAG and AI memory systems
  • Model optimization, quantization, LoRA, or KV caching
  • AI observability tools such as Langfuse, Arize, or Datadog
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