
Global financial services firm
Quantitative Research - SPG - Vice President
Required skills
Python
Linux
This role sits within a high-performing quantitative modeling group focused on Residential Mortgage-Backed Securities (RMBS) and related structured products. The team is responsible for developing, maintaining, and enhancing advanced models and analytical tools that drive valuation, risk assessment, and market-making activities across the firm’s trading and risk management functions.
Job Summary:
As a Vice President in the Quantitative Research SPG team, you will play a pivotal role in supporting the Global Securitized Product Group (SPG) business. Your responsibilities will include leading the development, documentation, and enhancement of advanced quantitative models and analytical tools for SPG. You will collaborate with the business, risk, and model review teams to support proper model usage, maintain infrastructure, and provide expert guidance and training to users and clients.
Job Responsibilities:
- Lead the development and maintenance of advanced models for valuation, risk assessment, profit and loss (P&L) calculations, as well as algorithms for quoting and market making, utilizing sophisticated mathematical approaches.
- Ensure comprehensive documentation of all new models to comply with firm-wide model risk policies and procedures.
- Design and implement analytical tools to monitor market conditions in Residential Mortgage-Backed Securities (RMBS), enhancing decision-making processes.
- Conduct data queries and processing for RMBS prepayment and credit modeling, ensuring high-quality data analysis at the loan or facility level.
- Investigate and develop new techniques to improve mathematical and computational efficiency within modeling processes.
- Ensure appropriate model usage across a diverse range of business users and risk functions, providing guidance and training as needed.
- Build and optimize a robust platform for large-scale data analysis to support various modeling initiatives.
- Develop a new model library focused on achieving desired computational efficiency and usability.
- Oversee the maintenance and enhancement of existing infrastructure used for valuing and hedging financial transactions.
- Work closely with risk and model review groups to ensure proper model usage, conduct model reviews, and implement effective risk controls.
- Provide support to internal and external clients regarding their model usage, addressing inquiries and facilitating training as needed.
Required qualifications, capabilities, and skills:
- 3+ years of experience at the Vice President level.
- Proficient in Python and C++ for developing analytical tools and models.
- PhD in advanced maths
- Skilled in working within a Linux shell environment, utilizing shell scripting for automation and data processing.
- Extensive experience in data analysis focused on mortgage and loan performance datasets, specifically analyzing prepayment and credit historical data at the loan or facility level.
- Expertise in developing econometric models to assess financial performance and risk.
- Proficient in conducting Monte Carlo simulations for risk analysis and forecasting.
- Experienced in developing logistic regression models to predict binary outcomes based on historical data.
- Knowledgeable in developing factor models, including Principal Component Analysis (PCA) and hazard rate models.
- Proficient in using statistical Python packages such as Num Py, Pandas, and Stats Models for data manipulation and statistical analysis.
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About JPMorgan Chase

JPMorgan Chase
PublicJPMorgan Chase & Co. is an American multinational banking institution headquartered in New York City and incorporated in Delaware. It is the largest bank in the United States, and the world's largest bank by market capitalization as of 2025.
300,000+
Employees
New York City
Headquarters
$500B
Valuation
Reviews
10 reviews
3.8
10 reviews
Work-life balance
3.5
Compensation
4.0
Culture
3.8
Career
3.2
Management
2.8
68%
Recommend to a friend
Pros
Good benefits and compensation
Supportive colleagues and environment
Flexible work arrangements
Cons
Long hours and heavy workload
Management issues and lack of direction
High stress and expectations
Salary Ranges
44 data points
Mid/L4
Senior/L5
Mid/L4 · Applied AI ML Associate
2 reports
$188,500
total per year
Base
$145,000
Stock
-
Bonus
-
$182,000
$195,000
Interview experience
4 interviews
Difficulty
3.0
/ 5
Duration
14-28 weeks
Offer rate
50%
Experience
Positive 25%
Neutral 75%
Negative 0%
Interview process
1
Application Review
2
HR Screen
3
Hiring Manager Interview
4
In-person/Final Interview
5
Offer
Common questions
Behavioral/STAR
Past Experience
Culture Fit
Financial Knowledge
Case Study
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