Scan your resume against ATS criteria for this Fraud Data Science role at Vana.
Data analysis and modeling: Explore large-scale transactional and behavioral datasets to uncover patterns associated with fraud.
Model development and validation: Build and validate classification models using ML techniques tailored to imbalanced problems (fraud vs. non-fraud).
Feature engineering: Create derived variables that enhance model performance and generalization while avoiding overfitting.
Cross-functional collaboration: Work with engineering, product, and operations teams to ensure seamless integration of models into decision flows.
Monitoring and iteration: Track model performance in production and iterate based on behavioral changes, fraud trends, or strategy shifts.
Research and innovation: Stay up to date on cutting-edge ML techniques for fraud detection in digital transactional environments.
Requirements:
Degree in Data Science, Statistics, Mathematics, Computer Science or a related field with strong programming skills [MUST]
1-2 years of experience in Data Science, Data/Business Analytics (with ML knowledge) [MUST]
2+ years of Python and SQL experience [MUST]
Knowledge of fraud detection, anomaly detection, or modeling with imbalanced datasets [MUST]
Industry background in fintech, insurance, or banking is valued but not required [DESIRABLE]
AWS Services knowledge is a Plus [DESIRABLE]
Strong analytical skills and a problem-solving mindset, with the ability to extract actionable insights from data [MUST]
Understanding of consumer behavior, alternative data sources, and digital lending platforms [DESIRABLE]
How to apply for Fraud Data Science at Vana?
Click the "Apply on Company Website" button on this page to submit your application directly on the employer's official portal.
What is the salary for this role?
Salary details will be discussed during the interview.
What experience is required?
1-2 years of experience is required.
Is this position still open?
Yes, currently active and accepting applications.
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Fraud Data Science
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