Data Scientist - Fraud Detection

Mountain View, California, United States

DataVisor

DataVisor delivers a powerful fraud and risk management platform that enables organizations to respond to fraud attacks in real time.

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DataVisor is the world’s leading AI-powered Fraud and Risk Platform that delivers the best overall detection coverage in the industry. With an open SaaS platform that supports easy consolidation and enrichment of any data, DataVisor's solution scales infinitely and enables organizations to act on fast-evolving fraud and money laundering activities in real time. Its patented unsupervised machine learning technology, advanced device intelligence, powerful decision engine, and investigation tools work together to provide guaranteed performance lift from day one. DataVisor's platform is architected to support multiple use cases across different business units flexibly, dramatically lowering total cost of ownership, compared to legacy point solutions. DataVisor is recognized as an industry leader and has been adopted by many Fortune 500 companies across the globe.

The Data Science/Modeling team holds the secret sauce of DataVisor. We run our advanced core unsupervised analytics engine and machine learning models on hundreds of billions of events from hundreds of millions of users. We are a mix of big data software engineers and inquisitive data scientists. We love finding beautiful patterns in data to catch and prevent malicious attacks against normal good users. We’re also not afraid to get our hands dirty; we get deep satisfaction coming up with and implementing new ideas for improvements to our detection engine. If you have a knack for mining fraud patterns while wrangling big data, are excited by building world class anti-fraud models, and want to work on a team that impacts the company’s bottom line, we’d love to talk to you.

Requirements

  • This is an entry-level position ideal for recent graduates. We welcome candidates with an advanced degree (Master’s or Ph.D.) who are eager to apply their knowledge and skills in a professional setting. No prior full-time experience is required, though relevant internships or research experience are a plus.
  • Hands-on project or research experience in applying machine learning techniques to solve real-world problems. Solid understanding of machine learning algorithms, statistical methods, and data structures.
  • Strong skills in large-scale data manipulation, data mining, and data processing.
  • Proficiency in Python and/or Java, SQL, and commonly used data science tools (such as NumPy, Pandas, Scikit-learn, etc.).
  • Strong analytical and problem-solving skills, with attention to detail.
  • Excellent communication skills and ability to collaborate in a team-oriented environment.
  • Plus/Preferred Qualifications:
    • Ph.D. in Computer Science, Data Science, or a related engineering field.
    • Experience working with big data technologies such as Hadoop, MapReduce, or Spark.
    • Background in financial crime detection and fraud analysis within a financial institution or payment solutions company.

Benefits

We offer a flexible schedule with competitive pay, equity participation, and health benefits, along with catered lunch, company off-sites, and game nights, as well as the opportunity to work with a world-class team.

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* Salary range is an estimate based on our AI, ML, Data Science Salary Index 💰

Job stats:  3  2  0
Category: Data Science Jobs

Tags: Big Data Computer Science Data Mining Engineering Hadoop Java Machine Learning ML models NumPy Pandas Python Research Scikit-learn Spark SQL Statistics

Perks/benefits: Career development Competitive pay Flex hours Flex vacation Health care Team events

Region: North America
Country: United States

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