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Neurons Lab

Technical AI Engagement Lead

RemotePoland only
Published
Role
Engineering Management
Experience
Lead
Employment
Full-time
Salary not disclosed
Check eligibility

Open to PL only. Set where you work from to check your eligibility.

No BS summary

Technical AI engagement lead for Poland-based AI adoption across engineering orgs. Needs hands-on agentic coding stack fluency, AI architecture, engineering-leadership credibility, and experience leading AI adoption or developer enablement. Fluent English required; Russian and/or Ukrainian is a strong plus.

Core skills

LLM gatewaysAgentic coding stacksAI adoption

Required skills

Claude CodeCursorCodexMCPSpec-driven developmentLLM proxiesLiteLLM/OpenRouterBedrockDX Core 4DORA

Required languages

English Fluent required; required=true Реквизит schema lacks required flag, but candidate must have fluent English.

Optional languages

Russian Strong plusUkrainian Strong plus

What you'll do

  • Inside each company: take the cascade load off the CTO — turn their vision into team-level discipline: specs, rules, review standards, reusable skills, onboarding of the next circle of engineers
  • Run the diffusion loop between companies: detect what already works in one team, validate direction and risks, package it into a reusable artifact, transfer it to the rest, measure against objective criteria
  • Operate the rhythm: bi-weekly validation calls with active teams (an empty sprint is a signal to reorganize, not to push harder), a monthly cross-company demo meet, a per-company status board, and a monthly steering sync with the group CTO
  • Teach teams to define objective, numeric success criteria for agentic work (loop engineering / hill-climbing against a metric) — the single biggest success factor for agents in production
  • Respect each company's protocols: work through the local CTO first (some CTOs require being the first point of contact for all technical topics), never around them
  • Triage needs that exceed enablement into scoped units — workshops (with the Head of AI Engineering), PoCs, deep-dive reviews — and hand them to the right Neurons Lab team
  • Feed the group-level gateway/attribution agenda: cost and error attribution per team and tool; collaborate with the cloud team on cost optimization and AWS credits/co-funding
  • Capture everything reusable in a group knowledge base; make wins visible to the CTOs and group leadership

What they require

  • Hands-on daily fluency with agentic coding stacks: Claude Code, Cursor, Codex — including MCP servers, skills, sub-agents, and spec-driven development on real repositories
  • AI architecture: LLM gateways/proxies (LiteLLM / OpenRouter class), cost and error attribution, local-LLM trade-offs, in-region deployment patterns (e.g. Bedrock)
  • Engineering-leadership credibility at tech-lead / AI-architect / head-of-engineering level — able to review real code, pipelines and specs with senior engineers, not present slides
  • Facilitation of technical sessions: live demos, validation calls, hands-on workshops with real repos
  • Packaging: turning a working practice into an artifact another team adopts without the author in the room
  • Engineering measurement in the AI era: DX Core 4 / DORA, AI-impact metrics, quality guardrails for AI-generated code
  • Adoption psychology for senior engineers — resistance among seniors is a named blocker in several of the client's companies
  • Preferred: Game development / iGaming exposure: game math, certification constraints, art/animation pipelines
  • Led AI adoption or platform/developer-enablement work in an engineering organization (20+ engineers), or equivalent tech-lead/head-of-engineering experience
  • Shipped agentic workflows to production; can show their own skills, MCP servers or spec repositories
  • Fluent English required
  • Russian and/or Ukrainian a strong plus — the client's teams communicate in both

Neurons Lab runs a group-wide AI Adoption Program for a major iGaming client: a holding of six game studios plus central business functions, 10+ companies, ~800–1,000 employees. The program combines business-team enablement, engineering enablement, and custom AI for game production.

AI
Salary not disclosed