Working Student Fraud Data Engineering / Analytics (all genders)
Job Description
Team: Tech
Job Location: Berlin, Germany, Munich, Germany
Position Type: Fixed\-term
Work Flexibility: Hybrid
We are looking for a motivated Working Student Fraud Data Engineering / Analytics to support our Fraud Engineering team. You will work with fraud\-related data, support fraud monitoring and investigation processes, and contribute to dashboards, reporting, and scalable fraud detection logic across modern e\-commerce operations. This role combines Fraud Analytics, Data Engineering, SQL, Python, and Business Intelligence and offers hands\-on experience in building data\-driven fraud prevention solutions without impacting customer experience.
Your Responsibilities
- Support the Fraud Engineering team with data analysis, fraud monitoring, and fraud investigation across e\-commerce processes
- Prepare, structure, and analyze large datasets using SQL, Python, and analytics tools
- Contribute to the development of fraud detection logic, dashboards, reporting solutions, and internal fraud analytics tools
- Help identify fraud patterns, suspicious behavior, account abuse, payment fraud, and operational anomalies through data\-driven insights
- Collaborate closely with cross\-functional teams to improve scalable fraud prevention processes and data quality standards
- Ongoing Master’s studies in Data Science, Data Engineering, Computer Science, Business Informatics, Statistics, Mathematics, or a comparable technical field
- Good practical knowledge of SQL and experience working with structured datasets and analytical workflows
- Basic experience with Python for scripting, automation, or data analysis
- Strong analytical mindset with interest in Fraud Detection, Risk Analytics, Payment Fraud, Account Abuse, and E\-Commerce
- Structured and hands\-on working style with the ability to work independently while collaborating closely with the team
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