Applied AI Engineer

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About the project

Build the agents at the core of a corporate learning platform โ€” planning, tool use, memory โ€” portable across Claude, OpenAI and Gemini.

Responsibilities

  • Design and ship agents โ€” the core of the role: planning, tool use, memory, and guardrails, orchestrated with LangChain/LangGraph, exposed via MCP where it fits, running behind a provider-abstraction layer with model routing and cost control
  • Build product features end to end โ€” from the front end through backend services to the model call in the cloud
  • Set up and tune retrieval: ingestion, chunking, retrieval quality, reranking, and grounded generation with citations
  • Evolve the content-generation pipeline: grounded generation from ingested sources, structured outputs that survive provider differences, and accuracy checks that keep generated material true to source
  • Develop hands-on lab environments in a sandboxed execution platform: mock APIs, auto-verification harnesses that grade learner work, and managed multi-provider model access with per-user budgets
  • Take charge of evaluation infrastructure: task datasets, deterministic and model-based graders, regression suites, and cross-provider benchmarks

Requirements

  • 4+ years in software engineering, with production systems you can walk through end to end
  • 1+ years shipping production LLM applications โ€” agents, tool use, retrieval โ€” with hands-on work across at least two of the three major platforms (Anthropic, OpenAI, Google)
  • Depth in agent development: tool use, memory, multi-step orchestration, and MCP โ€” you've built and debugged MCP servers, not just consumed them
  • Claude Code as a daily working tool, plus working fluency with the OpenAI API and Gemini โ€” or a demonstrated ability to get there fast, since the abstractions matter more than any single SDK
  • Evaluation fluency: task datasets, deterministic and model-based graders, regression suites. "I tested it manually and it looked fine" is an unfinished sentence
  • Solid Python for LLM tooling, with experience in LangChain/LangGraph or an equivalent orchestration framework
  • Comfort with sandboxed cloud execution environments, CI, and API security basics
  • Clear technical communication โ€” you can review someone else's work rigorously and kindly, and explain a model limitation to a non-engineer without jargon
  • A responsible, outcomes-focused mindset
  • Advanced English or higher

What we offer

  • Technical Ownership: You own the AI architecture and the standards behind it
  • Modern AI Work: Agents, retrieval and evaluation as the everyday job, not a side experiment
  • Collaborative Environment: A team that values partnership, creativity, and mutual respect
  • Flexible Work: Work remotely from the comfort of your home or join us in our modern Kyiv office
  • Generous Time Off: 20 paid vacation days + 15 sick leave days annually
  • Professional Growth: Compensation for courses, certifications, and learning resources
  • Cutting-Edge Tools: Access to premium AI tools (Cursor Pro, Claude Code, GitHub Copilot, etc.)

Recruitment process

  • HR&Technical Interview
  • Client stage
  • Offer

Required languages

Published 16 September
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25 applications
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