Head of Data Platforms @ Michael Page

Michael Page

Warszawa

Hybrid

PLN 480,000 - 720,000

Full time

14 days+
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Benefits offered by this job

Private medical care
Annual bonus
Employee stock purchase plan
Flexible benefits budget
Life insurance
Hybrid work model
Modern office in Warsaw

Job summary

Michael Page is partnering with a global biotechnology company to recruit a senior leader for enterprise data and AI platforms. You will define a multi-year strategy, set standards for data ingestion, AI workloads, and governance, and drive platform investments across regions.

You will lead a global team, partner with stakeholders, and push for platform simplification while ensuring regulatory and security requirements are met.

Qualifications

  • 10+ years of experience in data platforms, data engineering, cloud data architecture, or a related domain.
  • 5+ years of experience leading managers, senior engineers, architects, and global technical teams.
  • Experience delivering AI and GenAI platform capabilities, including MLOps, LLMOps, RAG, vector search, model serving, and AI-powered analytics.
  • Strong background in Infrastructure as Code, automation, DevOps, and platform engineering.

Responsibilities

  • Define and execute a multi-year vision and roadmap for enterprise data and AI platforms.
  • Establish standards and best practices for data ingestion, integration, streaming, analytics, and AI workloads.
  • Lead architecture governance, technology assessments, and platform investment decisions.
  • Oversee platform engineering, cloud infrastructure, automation, CI/CD, monitoring, and resilience.
  • Build and lead a global team responsible for enterprise data and AI platform capabilities.
  • Drive cost governance, budgeting, and cloud cost optimization initiatives.

Skills

Data platforms
Data engineering
Cloud architecture
People leadership
AI platform
FinOps
Platform engineering
DevOps
MLOps
Governance

Education

Bachelor's degree in Computer Science/Engineering/IS

Tools

Databricks
Terraform
CI/CD tooling

Job description

  • 10+ years of experience in data platforms, data engineering, cloud data architecture, or a related domain.
  • 5+ years of experience leading managers, senior engineers, architects, and global technical teams.
  • Deep expertise in modern data platform architectures, including lakehouse and cloud-native data ecosystems.
  • Hands-on experience with enterprise-scale cloud platforms, particularly Azure and/or AWS.
  • Strong knowledge of Databricks or comparable large-scale analytics platforms.
  • Experience delivering AI and GenAI platform capabilities, including MLOps, LLMOps, RAG, vector search, model serving, and AI-powered analytics.
  • Strong background in Infrastructure as Code, automation, DevOps, and platform engineering.
  • Proven success driving cloud FinOps, governance, cost optimization, and operational excellence initiatives.
  • Familiarity with data governance, master data management, integration platforms, and enterprise data management practices.
  • Experience operating within complex, highly regulated environments is highly desirable.
  • Bachelor's degree in Computer Science, Engineering, Information Systems, or a related discipline; advanced degree preferred.

The employer is a global biotechnology company focused on developing innovative therapies for serious diseases. It combines scientific research with advanced technology to deliver impactful treatments and improve patient outcomes worldwide.

Industry: Technology & Telecoms

Area: IT Data Analysis

Your responsibilities
Platform Strategy & Architecture
  • Define and execute a multi-year vision and roadmap for enterprise data and AI platforms.
  • Establish standards, frameworks, and best practices for data ingestion, integration, streaming, semantic models, analytics, and AI workloads.
  • Design and evolve scalable platform architectures supporting multiple business domains and geographic regions.
  • Lead architecture governance, technology assessments, and strategic platform investment decisions.
  • Drive platform simplification initiatives by reducing tool fragmentation and technical debt.
  • Manage strategic technology partnerships and vendor relationships.
AI & Advanced Analytics Enablement
  • Leverage AI to improve metadata management, data quality, lineage, documentation, operational efficiency, and platform support.
  • Define enterprise patterns for AI-enabled analytics, generative AI, conversational BI, retrieval-augmented generation (RAG), model observability, and responsible AI practices.
  • Partner with business and technology stakeholders to scale successful AI initiatives into enterprise-wide capabilities.
  • Maintain an innovation roadmap balancing business value, operational excellence, risk management, and regulatory requirements.
FinOps & Cost Optimization
  • Own financial governance and cost efficiency across the data and AI platform landscape.
  • Lead capacity planning, budget management, and cloud cost optimization initiatives.
  • Establish cost transparency through chargeback/showback models, workload governance, and usage monitoring.
  • Define measurable targets and KPIs for platform efficiency and value realization.
Engineering, Operations & Reliability
  • Oversee platform engineering, cloud infrastructure, access management, automation, CI/CD, monitoring, and resilience.
  • Deliver platform-as-a-product capabilities, including self-service provisioning, reusable frameworks, deployment templates, and developer enablement.
  • Introduce and mature Site Reliability Engineering (SRE) practices covering availability, performance, incident response, capacity planning, and disaster recovery.
  • Govern reusable accelerators, frameworks, and platform services as managed products with defined roadmaps and release plans.
  • Ensure adherence to enterprise security, privacy, compliance, audit, and governance standards.
  • Implement end-to-end observability for data products, pipelines, workloads, and operational health.
Leadership & Operating Model
  • Build and lead a global team responsible for enterprise data and AI platform capabilities.
  • Define effective engagement models between centralized platform organizations and distributed domain teams.
  • Collaborate with senior business and technology leaders to align platform investments with strategic priorities.
  • Foster communities of practice and drive adoption of platform standards and best practices.
  • Develop technical talent through coaching, mentorship, architecture reviews, and capability-building initiatives.
What's on Offer
  • Private medical care
  • Annual bonus
  • Employee stock purchase plan
  • Flexible benefits budget
  • Life insurance
  • Hybrid work model (3 days in the office)
  • Modern office in Warsaw

Requirements: Cloud, Cloud platform, Azure, AWS, Databricks, Analytics platform, AI, MLOps, Infrastructure as Code, DevOps, Data management, Degree Additionally: Private healthcare.

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