Data Scientist protecting Spotify from user fraud by detecting and preventing fake account creation and artificial streaming activity. Join the User Fraud R&D Studio in a cross-functional team.
Responsibilities
Analyze user and system data to detect and assess risks of artificial or fraudulent activity on Spotify.
Build data science and machine learning solutions to enable Spotify to quickly and automatically analyze data for fraud prevention.
Communicate insights and recommendations to non-technical audiences using clear visuals and data storytelling.
Build scalable data pipelines and dashboards to track our performance and support decision-making.
Requirements
At least two years of experience working with large, complex datasets using Python, SQL or R. You should also be comfortable creating your own data visualizations using tools like matplotlib, ggplot, looker studio or similar.
Degree in data science, computer science, statistics, economics, mathematics, or a similar quantitative field.
Experience and strong understanding of working with data pipelines, anomaly detection methods, statistical modeling and machine learning.
Strong analytical skills, with the ability to turn data into actionable insights and recommendations.
Strong problem-solving skills, intellectual curiosity, and a proactive approach to identifying new opportunities for fraud detection and prevention.
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