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AI Engineering Team Lead

Gloat·Tel Aviv, Израиль·en
Не указаноПолная занятостьAI EngineeringEnterprise SoftwareHR Technology

Lead and mentor an AI engineering team while remaining hands-on in developing an enterprise agentic AI platform. Own agent workflows from design and evaluation through production deployment and iteration.

Обязанности

  • Manage, mentor, and develop a team of AI and software engineers.
  • Allocate work, plan sprints, and oversee agile team ceremonies.
  • Design, build, and code multi-agent systems and orchestration, including intent routing, planning, tool use, and coordination.
  • Set technical direction and make architecture decisions for scalable LLM applications grounded in a knowledge graph.
  • Integrate LLMs with tool-calling protocols and enterprise systems, business logic, and workflows.
  • Build evaluation harnesses, guardrails, and safety and bias checks.
  • Improve agent latency, cost, and reliability; take systems from prototype to production with monitoring and observability.
  • Collaborate with Product, Data, and Design teams to translate customer needs into agent capabilities and prioritize roadmaps.
  • Guide the team through rapid development cycles and changing priorities while maintaining delivery quality.

Требования

  • At least five years of hands-on experience as a backend, AI, or software engineer building complex, scalable distributed systems in production.
  • At least two years of experience managing or leading a software or AI engineering team.
  • Hands-on experience building and shipping LLM agents to production.
  • Experience with at least one agent orchestration framework, such as LangGraph, LangChain, AutoGen, CrewAI, or Semantic Kernel.
  • Strong Python skills and solid software engineering fundamentals.
  • Agile project management experience, including sprint planning and execution.
  • Ability to work effectively in a fast-paced environment with changing priorities.
  • Strong communication and stakeholder collaboration skills.

Будет плюсом

  • At least two years of hands-on experience with LLMs or generative AI.
  • Experience with RAG, embeddings, and vector databases.
  • Experience with tool use, function calling, and external system integrations.
  • Familiarity with MCP, agent memory, and planning or reasoning patterns.
  • Experience with bias evaluation, guardrails, and AI governance.

Соответствие

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