Principal Data Platform Engineer (Swedish Ad Platform)

Sigma Software

Kraków

On-site

PLN 380,000 - 580,000

Full time

41 hours ago
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Job summary

Sigma Software is seeking a Principal/Staff Data Platform Engineer in Kraków, Poland, to own architectural decisions and establish engineering standards for a next-generation data platform. You will drive immutable event-driven design, lakehouse concepts, and scalable analytics, collaborating across engineering teams to deliver production-ready capabilities.

Ideal candidates bring 8+ years building production-grade data platforms, deep experience with Iceberg, Spark, Flink, Trino, and cloud

Qualifications

  • 8+ years of experience designing and operating production-grade data platforms.
  • Strong expertise in distributed data systems and high-volume event-driven architectures.
  • Deep understanding of modern lakehouse architectures and Apache Iceberg.
  • Advanced SQL skills and production experience with Python, Java, or Scala.
  • Experience with distributed processing and query technologies such as Spark, Flink, or Trino.
  • Strong knowledge of data modeling, partitioning strategies, and performance optimization.
  • Proven experience building batch and near-real-time data pipelines.
  • Hands-on experience with AWS cloud infrastructure.
  • Strong understanding of CI/CD pipelines, Infrastructure as Code, and production observability.
  • Experience implementing data contracts, schema evolution, and data quality frameworks.
  • Ability to make pragmatic architectural decisions in greenfield environments.
  • Upper-Intermediate or higher English level.
  • Strong communication and technical leadership skills.

Responsibilities

  • Lead the technical design and architecture of a modern enterprise-scale data platform.
  • Define scalable data flows from Iceberg-based event storage into analytical and operational data products.
  • Evaluate and select technologies for orchestration, transformation, querying, serving, and storage.
  • Design reusable canonical entities and data models across advertising, campaigns, inventory, billing, and customer domains.
  • Establish scalable engineering patterns for batch and near-real-time processing.
  • Build reliable and observable data pipelines for high-volume AdTech workloads.
  • Implement data quality, lineage, observability, and reconciliation capabilities.
  • Collaborate with Platform Engineering teams to introduce CI-enforced data contracts and governance standards.
  • Define tenant isolation, access control, and regional data boundary strategies.
  • Establish standards for testing, deployment automation, schema evolution, and versioning.
  • Optimize platform performance, scalability, and infrastructure costs.
  • Mentor engineers and contribute to engineering excellence across the team.
  • Partner closely with leadership and cross-functional stakeholders.

Skills

Distributed data systems
Event-driven architectures
Apache Iceberg
SQL
Python
Java
Scala
AWS
CI/CD

Tools

Spark
Flink
Trino
CI/CD pipelines

Job description

  • Full-time
Company Description

Join a greenfield initiative focused on building a next-generation AI-first data platform for a global AdTech ecosystem. We are looking for a Principal/Staff Data Platform Engineer who will drive architectural decisions, establish engineering standards, and shape the foundation for scalable analytics and AI capabilities.

As part of Sigma Software, you will collaborate with experienced engineering teams and contribute to a platform designed around immutable event-driven architecture, governed data contracts, and modern lakehouse principles. This role is ideal for a Principal-level engineer who enjoys solving complex distributed systems challenges and influencing platform strategy from day one.

We offer the opportunity to work on large-scale international products, collaborate with highly skilled professionals, and contribute to a technically ambitious environment with long-term growth potential.

CUSTOMER

Our Customer is a Sweden-based AdTech company specializing in advanced self-serve advertising platforms that automate direct transactions between advertisers and major global publishers. Their solutions improve transparency and operational efficiency in digital advertising and are trusted by globally recognized brands including TripAdvisor, Bloomberg, The Washington Post, Opera, and Dow Jones. The company processes millions of advertising transactions worldwide and is actively investing in AI-driven data capabilities.

PROJECT

The project focuses on building a modern data platform from the ground up with an emphasis on immutable event streams, governed canonical models, semantic layers, and scalable analytics infrastructure. The platform will support analytical workloads, operational data products, AI applications, and future customer-facing data experiences.

As a Principal / Staff Data Platform Engineer, you will own key architectural decisions, define scalable engineering standards, and help deliver the first production-ready version of the platform in a high-scale AdTech environment.

Key Technologies: Apache Iceberg, Spark, Flink, Trino, AWS, Python, Scala, Java, CI/CD, Infrastructure as Code

Job Description
  • Lead the technical design and architecture of a modern enterprise-scale data platform
  • Define scalable data flows from Iceberg-based event storage into analytical and operational data products
  • Evaluate and select technologies for orchestration, transformation, querying, serving, and storage
  • Design reusable canonical entities and data models across advertising, campaigns, inventory, billing, and customer domains
  • Establish scalable engineering patterns for batch and near-real-time processing
  • Build reliable and observable data pipelines for high-volume AdTech workloads
  • Implement data quality, lineage, observability, and reconciliation capabilities
  • Collaborate with Platform Engineering teams to introduce CI-enforced data contracts and governance standards
  • Define tenant isolation, access control, and regional data boundary strategies
  • Establish standards for testing, deployment automation, schema evolution, and versioning
  • Optimize platform performance, scalability, and infrastructure costs
  • Mentor engineers and contribute to engineering excellence across the team
  • Partner closely with leadership and cross-functional stakeholders
Qualifications
  • 8+ years of experience designing and operating production-grade data platforms
  • Strong expertise in distributed data systems and high-volume event-driven architectures
  • Deep understanding of modern lakehouse architectures and Apache Iceberg
  • Advanced SQL skills and production experience with Python, Java, Scala, or similar languages
  • Experience with distributed processing and query technologies such as Spark, Flink, or Trino
  • Strong knowledge of data modeling, partitioning strategies, and performance optimization
  • Proven experience building batch and near-real-time data pipelines
  • Hands-on experience with AWS cloud infrastructure
  • Strong understanding of CI/CD pipelines, Infrastructure as Code, and production observability
  • Experience implementing data contracts, schema evolution, and data quality frameworks
  • Ability to make pragmatic architectural decisions in greenfield environments
  • Upper-Intermediate or higher English level
  • Strong communication and technical leadership skills
WILL BE A PLUS
  • Experience in AdTech or other high-volume event-processing domains
  • Familiarity with semantic layer technologies
  • Experience supporting both analytics and ML/AI workloads
  • Understanding of privacy regulations and data residency requirements
Additional Information

What success looks like within your first six months:

  • The first production data foundation is running.
  • Clear architectural decisions have been made and documented.
  • Events entering the data platform have enforceable contracts.
  • Core canonical entities exist and are tested.
  • Data quality and lineage are observable.
  • Other engineers can contribute without needing to understand every implementation detail.

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