AI Dev Coach

Transition Technologies PSC

Polska

Hybrid

PLN 180,000 - 280,000

Full time

14 days+
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Job summary

Transition Technologies PSC seeks an AI Coach for DevOps Practice to drive AI adoption across software teams. You will coach engineers, enable AI-powered SDLC practices, and help leaders govern AI initiatives. You will measure outcomes and promote responsible AI usage.

The role requires strong coaching, training delivery, and deep knowledge of AI tooling and SDLC principles, with a focus on business value and continuous learning.

Qualifications

  • Minimum 5 years in a technical role such as Software Developer, DevOps Engineer, Platform Engineer, QA Automation Engineer, SRE, or similar.
  • Hands-on experience with AI-powered engineering tools, including GitHub Copilot, Claude Code, Cursor, Microsoft 365 Copilot, or equivalent solutions.
  • Strong understanding of modern SDLC & DevOps practices.
  • Ability to lead trainings, workshops and coaching for technical and non-technical audiences.
  • Deep understanding of AI ecosystem, including LLMs, AI-assisted coding and automation.
  • Experience designing prompts, AI workflows, agents, and reusable AI solutions.
  • Knowledge of AI governance, security, compliance, and responsible AI practices.
  • Experience evaluating AI tools with quality, cost, risk, security considerations.
  • Analytical mindset to identify and prioritize AI use cases delivering business value.
  • Commitment to continuous learning and staying current with AI technologies.

Responsibilities

  • Lead AI adoption initiatives across cross-functional software engineering, DevOps, platform engineering, QA, and product teams.
  • Conduct training sessions, workshops, office hours, and hands-on coaching to improve practical usage of AI-powered development tools.
  • Mentor engineers and technical leaders in effective use of AI-powered development tools.
  • Promote AI literacy and help teams integrate AI into their daily ways of working.
  • Drive AI solutions across the SDLC from requirements through deployment and operations.
  • Define standards, usage guidelines, and governance for responsible AI utilization.
  • Measure KPIs and ROI of AI initiatives and report progress to stakeholders.

Skills

Coaching
Training sessions
Mentoring
Facilitation
Change management
Strategic thinking
Data-driven decisions
Ownership & execution
Curiosity

Tools

GitHub Copilot
Claude Code
Cursor
Microsoft 365 Copilot

Job description

The AI Coach - DevOps Practice is responsible for driving the adoption and effective utilization of AI technologies across software engineering and DevOps teams. This role combines technical expertise, coaching, consulting, and change management capabilities to help engineering organizations improve productivity, software quality, and delivery performance through AI-enabled ways of working.

The AI Coach acts as a trusted advisor to developers, DevOps engineers, architects, engineering managers, and technology leaders, helping teams identify, implement, govern, and scale AI solutions throughout the Software Development Lifecycle (SDLC). The role focuses on maximizing business value from AI investments by promoting best practices, measuring outcomes, and ensuring responsible and secure AI adoption.

AI Adoption & Enablement
  • Lead AI adoption initiatives across cross-functional software engineering, DevOps, platform engineering, QA, and product teams.
  • Conduct training sessions, workshops, office hours, and hands-on coaching to improve practical usage of AI-powered development tools.
  • Mentor engineers and technical leaders in effective use of GitHub Copilot, Claude Code, Cursor, and other AI-assisted development technologies.
  • Promote AI literacy and help teams integrate AI into their daily ways of working.
AI-Powered SDLC Transformation
  • Drive implementation of AI solutions across the Software Development Lifecycle (SDLC), from requirements analysis through development, testing, deployment, and operations.
  • Assess team needs and identify high-value use cases for AI adoption within engineering and DevOps practices.
  • Define standards, usage guidelines, and governance frameworks for responsible AI utilization.
  • Support scaling of successful AI initiatives across multiple teams and delivery organizations.
Measurement & Value Realization
  • Define and monitor KPIs, OKRs, and success metrics related to AI adoption and engineering productivity.
  • Measure business impact and ROI of AI initiatives across software delivery and DevOps organizations.
  • Produce executive-level reporting and insights on adoption progress, efficiency gains, and value realization.
Must-Have Qualifications
  • Minimum 5 years of experience in a technical role such as Software Developer, DevOps Engineer, Platform Engineer, QA Automation Engineer, SRE, or similar.
  • Hands-on experience with AI-powered engineering tools, including GitHub Copilot, Claude Code, Cursor, Microsoft 365 Copilot, or equivalent solutions.
  • Strong understanding of modern Software Development Lifecycle (SDLC) practices and DevOps methodologies.
  • Ability to lead training sessions, workshops, and coaching activities for technical and non-technical audiences.
  • Deep understanding of the current AI ecosystem, including LLMs, AI-assisted coding, content generation, agentic workflows, and automation.
  • Experience designing effective prompts, AI workflows, agents, and reusable AI solutions.
  • Knowledge of AI governance, security, compliance, and responsible AI practices.
  • Experience evaluating AI tools and platforms, considering quality, cost, risks, security, and regulatory requirements.
  • Analytical mindset with the ability to identify, measure, and prioritize AI use cases that deliver business value.
  • Strong passion for continuous learning and staying current with emerging AI technologies and industry trends.
Nice-to-Have Qualifications
  • Experience working in large enterprise environments, preferably within regulated industries such as financial services, banking, insurance, or healthcare.
  • Experience driving AI adoption or digital transformation initiatives across multiple teams or business units.
  • Knowledge of AI application architectures and frameworks, including RAG, LangGraph, LangChain, AI agents, and multi-agent systems.
  • Familiarity with Spec-Driven Development and AI-assisted software development methodologies.
  • Experience developing internal standards, best practices, playbooks, and governance frameworks.
  • Understanding of FinOps principles and optimization of AI-related costs.
  • Experience implementing AI solutions within engineering, DevOps, platform engineering, or cloud environments.
  • Public speaking experience, community leadership, conference presentations, or internal technical evangelism activities.
Key Competencies
  • Coaching and mentoring
  • Facilitation and workshop leadership
  • Influencing and change management
  • Strategic thinking
  • Data-driven decision making
  • Strong ownership and execution skills
  • Curiosity and experimentation mindset
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