Senior AI Engineer

Reposted 7 Hours Ago
Be an Early Applicant
2 Locations
In-Office
Senior level
Software
The Role
Lead backend architecture and implementation of GenAI/LLM solutions: design graph-based agent workflows, build RAG pipelines and LangChain integrations, ensure observability, safety, and streaming, and mentor the team to deliver production-grade agentic AI features.
Summary Generated by Built In

At JFrog, we're reinventing DevOps to help the world's greatest companies innovate – and we want you along for the ride. This is a special place with a unique combination of brilliance, spirit, and just all-around great people. Here, if you're willing to do more, your career can take off. Thousands of customers, including the majority of the Fortune 100, trust JFrog to manage, accelerate, and secure their software delivery from code to production – a concept we call "liquid software." Wouldn't it be amazing if you could join us on our journey?

We are seeking an experienced, hands-on Senior AI Engineer to join the Generative AI applications Platform group at JFrog and lead the backend implementation and architecture of AI/LLM solutions – from agent graphs and tooling to RAG, streaming, and production deployment.

As a Senior ML Engineer at JFrog you will…
  • Design and own agent architectures – Build and evolve graph-based agent workflows (multi-node LLM flows, tool execution, routing, human-in-the-loop review gates) using LangGraph, with clear state schemas, checkpointing, and streaming to production.
  • Turn product and user needs into backend AI – Work with Engineers, Product, and Analysts to translate business problems into technical requirements and implementations, including agent types, tools, RAG pipelines, and configuration-driven behavior.
  • Design, develop, and deploy GenAI capabilities end-to-end – LangChain tools and integrations, RAG (retrievers, vector stores, agentic flows), structured outputs, and APIs for chat, Copilot-style integrations, and MCP.
  • Raise the bar on quality and reliability – Establish patterns for observability (e.g., LangSmith), error handling, content safety, bounded autonomy (tool schemas, review workflows), and evaluation systems so that AI behavior is predictable and auditable.
  • Mentor and align the team – Provide technical guidance on LLM backend architecture and LangGraph/LangChain best practices so the team can iterate quickly and safely.
To be a Senior ML Engineer at JFrog you need…
  • Backend–LLM & agent architecture – 5+ years in production ML/AI and backend systems; recent hands-on experience with backend LLM systems, including agent workflows (e.g., LangGraph or similar), LangChain tooling and chains, state management, and streaming (e.g., SSE). You think in terms of nodes, state schemas, routing, and human-in-the-loop.
  • Technical stack – Proficient in Python; comfortable with LangGraph, LangChain, FastAPI, PostgreSQL, and optionally Azure AI Search or similar. Experience with LLM providers (OpenAI/Azure, Google Vertex AI, etc.) and RAG (retrievers, chunking, reranking) expected.
  • Generative AI in production – Proven track record building production GenAI applications, including multi-step agents, RAG, tool-augmented LLMs, and ideally human-in-the-loop or review flows. You care about observability, validation, and safe rollout.
  • Bachelor's degree or higher in Computer Science or a related field, and strong communication and collaboration skills.

Top Skills

Azure Ai
Azure Ai Search
Fastapi
Google Vertex Ai
Langchain
Langgraph
Langsmith
Openai
Postgres
Python
Rag
Retrievers
Sse
Tool-Augmented Llms
Vector Stores
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The Company
HQ: Sunnyvale, California
1,603 Employees
Year Founded: 2008

What We Do

JFrog Ltd. (Nasdaq: FROG), is on a mission to create a world of software delivered without friction from developer to device. Driven by a “Liquid Software” vision, the JFrog Software Supply Chain Platform is a single system of record that powers organizations to build, manage, and distribute software quickly and securely, ensuring it is available, traceable, and tamper-proof. The integrated security features also help identify, protect, and remediate against threats and vulnerabilities. JFrog’s hybrid, universal, multi-cloud platform is available as both self-hosted and SaaS services across major cloud service providers. Millions of users and 7K+ customers worldwide, including a majority of the FORTUNE 100, depend on JFrog solutions to securely embrace digital transformation. Once you leap forward, you won’t go back!

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