Principal Engineer GenAI

Genuine-Parts-Company

Kraków

Hybrid

PLN 180,000 - 260,000

Full time

11 days ago
Application generator

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Job summary

Genuine Parts Company in Kraków seeks a Principal Engineer in the Generative AI Innovation Hub to set technical direction for enterprise GenAI capabilities while remaining hands-on in architecture and development. You will lead rapid experimentation and partner with product, data, platform and security teams to move high-value use cases from prototype to production.

This senior individual-contributor role influences multiple teams, mentors engineers, and defines reusable architectures,

Qualifications

  • 10+ years of software engineering experience with significant technical leadership.
  • Recent practical experience designing, delivering, and operating AI/GenAI solutions in production.
  • Advanced Python skills and strong software architecture, APIs, testing, and maintainable practices.
  • Hands-on understanding of GenAI patterns including retrieval, agentic workflows, and evaluation.
  • Experience with cloud platforms, distributed systems, containers, CI/CD and production observability.
  • Ability to incorporate security, privacy and risk considerations into designs.
  • Proven ability to influence architecture across teams without formal authority.
  • Excellent communication to explain tradeoffs to technical and business audiences.

Responsibilities

  • Set and evolve the technical strategy, reference architectures, and engineering standards for enterprise generative AI solutions.
  • Architect and build prototypes and production services using Python, APIs, cloud platforms, and modern software engineering practices.
  • Lead the evaluation of foundation models, retrieval‑augmented generation, agentic workflows, and model or vendor options, including build‑versus‑buy decisions.
  • Establish LLMOps and MLOps practices for evaluation, testing, versioning, deployment, observability, incident response, and continuous improvement.
  • Embed responsible AI, data protection, security, and human‑oversight requirements throughout solution design and delivery.
  • Partner with business and product leaders to frame use cases, define measurable outcomes, and prioritize experiments based on value, feasibility, and risk.
  • Integrate generative AI capabilities with existing applications, enterprise data, and business processes.
  • Lead architecture and design reviews, mentor engineers across teams, and raise the bar for engineering quality.
  • Monitor relevant advances in AI and machine learning and recommend adoption when evidence supports meaningful business value.
  • Promote disciplined experimentation with explicit learning goals, evaluation criteria, and decision gates.

Skills

Software engineering
Technical leadership
Advanced Python
GenAI / AI
System architecture
Cloud platforms
CI/CD
Security and privacy
Communication skills

Education

Bachelor's or Master's in Computer Science or related field

Tools

Python
APIs
Cloud platforms
Containers
CI/CD

Job description

Company Background

Genuine Parts Company founded in 1928 and based in Atlanta, Georgia, is a leading specialty distributor engaged in the distribution of automotive and industrial replacement parts and value-added services. The Company operates a global portfolio of businesses with more than 10,000 locations across the world, employing 60,000 people. The GPC Global Technology Center in Krakow, established in 2022 by Genuine Parts Company is an innovative research and development facility supporting GPC’s digital transformation efforts. The hub is focused on the development of advanced technologies and solutions that support GPC's operations and growth. The GPC Global Technology Center team works on a wide range of projects assisting in areas such as e-commerce and data platforms, supply chain solutions, selling systems, and cyber security. This is home to a team of highly skilled IT engineers who are dedicated to driving innovation and delivering cutting‑edge solutions for GPC.

Role purpose

As a Principal Engineer in the Generative AI Innovation Hub, you will set technical direction for enterprise generative AI capabilities while remaining hands‑on in architecture and development. You will lead rapid experimentation, establish reusable engineering standards and reference architectures, and partner with product, data, platform, and security teams to move high‑value use cases from prototype to secure, reliable production. This senior individual‑contributor role has broad influence across product and engineering teams. You will guide design decisions, mentor engineers, and communicate tradeoffs to technical and business leaders.

What success looks like

Teams adopt reusable GenAI architectures, guardrails, and engineering standards. Experiments use clear business and technical criteria, leading to production or a timely stop decision. Production solutions meet agreed quality, security, privacy, reliability, latency, and cost targets. Mentoring and design reviews strengthen GenAI practices across engineering teams.

Key responsibilities
  • Set and evolve the technical strategy, reference architectures, and engineering standards for enterprise generative AI solutions.
  • Architect and build prototypes and production services using Python, APIs, cloud platforms, and modern software engineering practices.
  • Lead the evaluation of foundation models, retrieval‑augmented generation, agentic workflows, and model or vendor options, including build‑versus‑buy decisions.
  • Establish LLMOps and MLOps practices for evaluation, testing, versioning, deployment, observability, incident response, and continuous improvement.
  • Embed responsible AI, data protection, security, and human‑oversight requirements throughout solution design and delivery.
  • Partner with business and product leaders to frame use cases, define measurable outcomes, and prioritize experiments based on value, feasibility, and risk.
  • Integrate generative AI capabilities with existing applications, enterprise data, and business processes.
  • Lead architecture and design reviews, mentor engineers across teams, and raise the bar for engineering quality.
  • Monitor relevant advances in AI and machine learning and recommend adoption when evidence supports meaningful business value.
  • Promote disciplined experimentation with explicit learning goals, evaluation criteria, and decision gates.
Required qualifications
  • 10+ years of software engineering experience, including significant technical leadership across complex enterprise or distributed systems.
  • Demonstrated recent experience designing, delivering, and operating AI, machine learning, or generative AI solutions in production.
  • Advanced Python skills and strong command of software architecture, APIs, testing, and maintainable engineering practices.
  • Hands‑on understanding of modern generative AI application patterns, including retrieval, agentic workflows, model selection, prompt design, and evaluation.
  • Experience with cloud platforms, distributed systems, containers, CI/CD, and production observability.
  • Ability to incorporate security, privacy, responsible AI, and operational risk requirements into technical designs.
  • Proven ability to influence architecture and engineering decisions across multiple teams without relying on formal authority.
  • Clear communication skills and the ability to explain complex technical tradeoffs to engineering, product, business, and executive audiences.
Preferred qualifications
  • Bachelor's or master's degree in computer science, software engineering, or a related field, or equivalent practical experience.
  • Experience with generative AI frameworks, vector search, model‑serving platforms, and enterprise data integration.
  • Experience modernizing large‑scale enterprise platforms or building reusable internal technology capabilities.
  • Experience evaluating AI vendors, commercial models, open models, and total cost of ownership.
  • A record of mentoring senior engineers or building technical communities of practice.
Leadership characteristics
  • Pragmatic curiosity and a bias toward evidence, learning, and measurable outcomes.
  • Comfort navigating ambiguity, changing priorities, and rapidly evolving technology.
  • A collaborative, inclusive leadership style that builds trust across disciplines and organizational boundaries.
  • Strong judgment about when to experiment, when to standardize, and when to stop.
Location

Krakow/Hybrid

GPC conducts its business without regard to sex, race, creed, color, religion, marital status, national origin, citizenship status, age, pregnancy, sexual orientation, gender identity or expression, genetic information, disability, military status, status as a veteran, or any other protected characteristic. GPC's policy is to recruit, hire, train, promote, assign, transfer and terminate employees based on their own ability, achievement, experience and conduct and other legitimate business reasons.

Since 1928, GPC has set the standards for performance and value for our customers and our stakeholders. Today, we’re proud to say we’re the largest global auto parts network and a leading industrial parts distributor, one that offers rewarding careers that combine small company feel with a global scale. Our strengths are in the relationships we build and the value we deliver by merging local expertise with a global force.

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