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Pozíció leírása / Job description

Our client is a US-headquartered, market-leading enterprise in their sector with a multi-decade history and an agile, global network. We are seeking a highly skilled Principal Data Engineer to join their expanding Budapest team as a senior technical individual contributor. In this role, you will define data platform architecture and directly shape future-proof, data-driven, and AI-enabled solutions.

  • Architecture & Implementation: Architect and implement production-grade data solutions on AWS and Databricks — from lakehouse design through pipeline delivery, ensuring high performance, reliability, and cost efficiency.

  • Technical Strategy & Standards: Translate the overall data strategy into concrete technical blueprints, reference architectures, and actionable implementation plans. Establish and enforce architectural standards, data modeling conventions, and engineering best practices.

  • Data Platform Foundations: Own the design and buildout of core data platform components — including ingestion frameworks, transformation layers, data quality enforcement, and serving patterns.

  • ML/AI Enablement: Design data pipelines and lakehouse structures that directly enable Machine Learning and AI workloads, collaborating closely with Data Science and MLOps teams.

  • Platform FinOps: Drive FinOps at the architecture level — right-sizing compute/storage, building cost attribution models, and implementing cost optimization patterns across the platform.

  • Technical Mentorship: Mentor data engineers through architectural guidance, pair programming, and code reviews without carrying people-management responsibilities.

Elvárások / Requirements

  • Core Experience: 8+ years as a hands-on data engineer or data architect with recent, demonstrated production delivery in modern cloud-native stacks.

  • Senior / Principal Track: 3+ years operating at a Staff, Principal, or Senior Architect level as an individual contributor driving technical direction.

  • Databricks & AWS Expertise: Deep production experience with the Databricks Lakehouse on AWSUnity Catalog, Delta Live Tables, Databricks SQL, Databricks Workflows, and Structured Streaming. Strong working knowledge of supporting AWS services (S3, IAM, Glue, Lambda, Kinesis, Redshift).

  • Data Modeling & Observability: Expert-level data modeling skills (Dimensional, Data Vault, Lakehouse paradigms) and proven experience building data quality frameworks and automated testing into pipeline architectures.

  • Infrastructure-as-Code: Proficiency with Terraform, CloudFormation, or Databricks Asset Bundles.

  • FinOps Approach: Hands-on experience designing architectures that control compute spend and optimize resource utilization.

Preferred Qualifications:

  • Production experience building data infrastructure that directly enabled ML/AI product features (e.g., feature engineering pipelines, training datasets, model monitoring).

  • Experience with real-time or near-real-time data architectures (streaming ingestion, CDC, event-driven patterns).

  • Familiarity with Data Mesh principles, domain-oriented platform design, and enterprise data governance (access controls, PII handling, lineage).

Amit nyújtunk / Benefits

  • High Technical Impact: A unique professional challenge to shape the core data platform for a stable, market-leading global enterprise.

  • Competitive Compensation: Senior/Principal level base salary and annual target bonus.

  • Benefits Package: Cafeteria allowance and private health insurance package.

  • Flexibility: Hybrid working model requiring 3 days of office presence (Budapest) and offering 2 days of Home Office per week.

Randstad Hungária Kft. logó
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Principal Data Engineer

Budapest
Full time

Published on 11.09.2026

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