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Statista

Data & Analytics Engineer

Statista

Data & Analytics Engineer at Statista designing and maintaining backend services, data models, and pipelines. Collaborating across teams to enable data access and distribution through cloud platforms.

Posted 7/22/2026full-timeHamburg • 🇩🇪 GermanyMid-LevelSeniorWebsite

Core Competencies

Role fit
Core Competencies

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Demonstrates expertise in backend service design and implementation using Python, with a strong focus on data modeling, analytics engineering, and cloud data warehouse technologies. Proficient in building CI/CD pipelines and managing data schemas for effective data distribution and governance.

Highest-signal resume keywords
Python Backend DevelopmentSQL Data ModelingKafka Event StreamingCloud Data WarehousingCI/CD Pipeline Management

ATS Keywords

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Hard Skills
PythonSQLData ModelingKafkaAvroProtobufJSON SchemaSnowflakeBigQueryRedshift
Soft Skills
Attention to DetailAnalytical MindsetProblem-SolvingExcellent Communication
Tools & Technologies
CI/CDKubernetesDbtKafka Schema RegistryAPI Development
Industry Keywords
Data EngineeringAnalytics EngineeringData GovernanceData ArchitectureStreaming Data

Tech Stack

Tools & technologies
Amazon RedshiftAWSBigQueryCloudKafkaKubernetesPythonSQL

About the role

Key responsibilities & impact
  • Design, implement, and maintain backend services in Python that power our data access and distribution layer
  • Build and operate automated build, test, and deployment pipelines following CI/CD and GitOps practices, running on AWS and Kubernetes
  • Design and maintain data models and schemas (Avro, SQL) for our data pipelines and services, and publish them to downstream consumers via our Kafka-based distribution platform and schema registry
  • Build access-layer data models in our analytics environment (e.g., Snowflake) so applications can work with the data directly, including via API
  • Act as the coordination interface between the Data and Tech divisions, aligning priorities, schemas, and timelines across upstream and downstream teams

Requirements

What you’ll need
  • 3+ years of experience in analytics engineering, data engineering, or a related role
  • Strong SQL skills and solid experience in data modeling (e.g., dimensional modeling, star schemas)
  • Hands-on experience with event streaming and message distribution, ideally Kafka, including schema management with the Kafka Schema Registry (Avro, Protobuf, or JSON Schema)
  • Experience designing data contracts and schemas between upstream producers and downstream consumers
  • Experience with cloud data warehouses (e.g., Snowflake, BigQuery, Redshift) and modern data stack tools (e.g., dbt, CI/CD)
  • Openness to AI-assisted development workflows (e.g., Claude Code or similar)
  • Comfort working at the boundary of streaming/operational data and analytical data models, and building access layers that serve applications via API
  • Strong attention to detail with a quality-focused and structured working style
  • Interest in data governance, standards, and scalable data architecture
  • Analytical mindset with strong problem-solving skills
  • Excellent communication skills in English (German is a plus), with both technical and business stakeholders, combined with a solid understanding of business requirements and contexts

Benefits

Comp & perks
  • Work from abroad for up to 30 calendar days per year
  • Hybrid work and flexible hours
  • International team and social events
  • Subsidized urban mobility and access to fitness and wellness options
  • Free access to Langdock and all its features
  • Career and training opportunities
  • Attractive locations and modern offices
  • Mental health support with OpenUp