Princ Associate, Data Science

Capital One Financial Corporation
Chicago, United States of America
yesterday

Role details

Contract type
Permanent contract
Employment type
Part-time / full-time
Working hours
Regular working hours
Languages
English
Experience level
Junior
Compensation
$ 168K

Job location

Chicago, United States of America

Tech stack

Artificial Intelligence
Amazon Web Services (AWS)
Data analysis
Python
Machine Learning
Open Source Technology
Performance Tuning
Standard Sql
Sentiment Analysis
Cloud Platform System
Large Language Models
Snowflake
Spark
Deep Learning
Information Technology
Data Analytics
Virtual Agents

Job description

The Anti-Money Laundering (AML) Modeling and Advanced Data Insights team is on a journey to modernize the way Capital One identifies potential money laundering, fraud, terrorist financing, and human trafficking through the use of advanced analytic techniques, statistics, and machine learning models. We develop predictive models, monitoring dashboards, and reporting using tools such as AWS, Snowflake, Python, and Spark. Our team produces the model outputs and data insights to operate our AML program efficiently and effectively. As the model developers for advancing transaction monitoring and customer risk rating with machine learning, our team is responsible for end to end development, deployment, and monitoring of production models., * Partner with a cross-functional team of data scientists, software engineers, business analysts, risk managers, and product owners to deliver industry-leading risk management products

  • Leverage a broad stack of tools and technologies ? Python, Conda, AWS, Spark, dbt, and more ? to build production-ready pipelines for data sourcing, model development, and model scoring
  • Build machine learning models and AI tools through all phases of development, from design through training, evaluation, validation, and implementation
  • Fine tune, evaluate, customize, and productionize Large Language Models (LLMs)
  • Flex your interpersonal skills to translate the complexity of your work into tangible business goals

Requirements

  • 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.
  • Creative. You thrive on bringing definition to big, undefined problems. You love asking questions and pushing hard to find answers. You?re not afraid to share a new idea.
  • 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., * 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 5 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 3 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), * Master?s Degree in ?STEM? field (Science, Technology, Engineering, or Mathematics) plus 3 years of experience in data analytics, or PhD in ?STEM? field (Science, Technology, Engineering, or Mathematics)
  • At least 2 years? experience in AML modeling or related domain (e.g. Fraud, Credit Risk, etc.)
  • At least 1year of experience developing and evaluating production-grade GenAI, Agentic AI, and/or LLMs based systems, including experience with vector databases, LLM fine tuning, RAG, and use of LangGraph or LlamaIndex
  • At least 1 year of experience working with AWS
  • At least 3 years? experience in Python and SQL
  • At least 3 years? experience with machine learning

Benefits & conditions

The minimum and maximum full-time annual salaries for this role are listed below, by location. Please note that this salary information is solely for candidates hired to perform work within one of these locations, and refers to the amount Capital One is willing to pay at the time of this posting. Salaries for part-time roles will be prorated based upon the agreed upon number of hours to be regularly worked.

Chicago, IL: $147,100 - $167,900 for Princ Associate, Data Science

McLean, VA: $161,800 - $184,600 for Princ Associate, Data Science

Plano, TX: $147,100 - $167,900 for Princ Associate, Data Science

Richmond, VA: $147,100 - $167,900 for Princ Associate, Data Science

Candidates hired to work in other locations will be subject to the pay range associated with that location, and the actual annualized salary amount offered to any candidate at the time of hire will be reflected solely in the candidate?s offer letter.

This role is also eligible to earn performance based incentive compensation, which may include cash bonus(es) and/or long term incentives (LTI). Incentives could be discretionary or non discretionary depending on the plan.

Capital One offers a comprehensive, competitive, and inclusive set of health, financial and other benefits that support your total well-being. Learn more at the. Eligibility varies based on full or part-time status, exempt or non-exempt status, and management level.

About the company

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.

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