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Data & Analytics Engineer
StatistaData & 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.
Core Competencies
Role fitCore Competencies
Use this summary to align your resume positioning with the role.
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
Tailor your resumeApplicant Tracking System Keywords
Tip: use these terms in your resume and cover letter to boost ATS matches.
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 & technologiesAmazon 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