Manager, Data Scientist
Capital OneAbout the role
Manager, Data Scientist, First Party Fraud
Data is at the center of everything we do. As a startup, we disrupted the credit card industry by individually personalizing every credit card offer using statistical modeling and the relational database, cutting edge technology in 1988! Fast-forward a few years, and this little innovation and our passion for data has skyrocketed us to a Fortune 200 company and a leader in the world of data-driven decision-making.
As a Data Scientist at Capital One, you’ll be part of a team that’s leading the next wave of disruption at a whole new scale, using the latest in computing and machine learning technologies and operating across billions of customer records to unlock the big opportunities that help everyday people save money, time and agony in their financial lives.
Team Description
The Bank’s First Party Fraud (FPF) DS team builds the machine learning (AI/ML) models that enable exceptional customer experiences while protecting the Bank from fraudsters and minimizing operational overhead. Through our models and partnerships, we facilitate customers’ fast access to funds, accounts, and overdraft and provide quick resolutions when they face an issue. Simultaneously, we minimize fraud losses in deposits, forgeries, overdraft, claim abuse, and identify theft. This is all done through deploying the latest modeling techniques over complex data and on world-class platforms.
Role Description
In this role, you will:
Partner with a cross-functional team of data scientists, data analysts, software engineers, business analysts, and product managers to deliver products and services customers love
Leverage a broad stack of technologies — Python, AWS, graphs, Spark, and more — to reveal the insights hidden within huge volumes of numeric and textual data
Build machine learning models through all phases of development, from design through training, evaluation, validation, implementation, and ongoing monitoring
Flex your interpersonal skills to translate the complexity of your work into tangible business goals
The Ideal Candidate is:
Innovative. You continually research and evaluate emerging technologies. You stay current on published state-of-the-art methods, technologies, and applications and seek out opportunities to apply them.
A leader. You challenge conventional thinking and work with stakeholders to identify and improve the status quo. You thrive on bringing definition to big, undefined problems.
Technical. You’re comfortable with open-source languages and are passionate about developing further. You have hands-on experience developing data science solutions using open-source tools and cloud computing platforms.
Statistically-minded. You’ve built models, validated them, and backtested them. You know how to interpret a confusion matrix or a ROC curve. You have experience with clustering, classification, sentiment analysis, time series, and deep learning.
Basic Qualifications:
Currently has, or is in the process of obtaining one of the following with an expectation that the required degree will be obtained on or before the scheduled start date:
A Bachelor's Degree in a quantitative field (Statistics, Economics, Operations Research, Analytics, Mathematics, Computer Science, or a related quantitative field) plus 6 years of experience performing data analytics
A Master's Degree in a quantitative field (Statistics, Economics, Operations Research, Analytics, Mathematics, Computer Science, or a related quantitative field) or an MBA with a quantitative concentration plus 4 years of experience performing data analytics
A PhD in a quantitative field (Statistics, Economics, Operations Research, Analytics, Mathematics, Computer Science, or a related quantitative field) plus 1 year of experience performing data analytics
At least 1 year of experience leveraging open source programming languages for large scale data analysis
At least 1 year of experience working with machine learning
At least 1 year of experience utilizing relational databases
Preferred Qualifications:
PhD in “
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