Vice President, Quantitative Engineering

Goldman Sachs Services LLC
  • New York, NY
  • $191,000–$236,800 Per Year
3 days ago

Job Description

Vice President, Quantitative Engineering with Goldman Sachs Services LLC in New York, New York. Lead the design, development, implementation, and documentation of advanced quantitative models and scenarios for time series forecasting. Incorporate economic, financial, and business-risk variables to address practical issues in finance and risk management and conduct uncertainty quantification. Requires: PhD degree (U.S. or foreign equivalent) in Mathematics, Computer Science, Financial Engineering, Applied Mathematics, or related quantitative field such as Statistics and one (1) year of experience in job offered or a related quantitative engineering role OR Master’s degree (U.S. or foreign equivalent) in Mathematics, Computer Science, Financial Engineering, Applied Mathematics, or related quantitative field such as Statistics and three (3) years of experience in job offered or a related quantitative engineering role OR Bachelor’s degree (U.S. or foreign equivalent) in Mathematics, Computer Science, Financial Engineering, Applied Mathematics, or related quantitative field such as Statistics and five (5) years of experience in job offered or a related quantitative engineering role. Prior experience must include one (1) year with PhD OR three (3) years with Master’s OR five (5) years with Bachelor’s with the following: programming Languages including C++, R, or Python; econometrics and Time-Series Analysis including modern time-series econometric techniques for forecasting, structural-break analysis, and regime-switching analysis; simulation and Uncertainty Quantification including Monte Carlo simulation and modern Conformal Prediction methods for uncertainty quantification; machine Learning and non-parametric statistics including statistical learning methods with emphasis on explainable ML, causal model selection, and hyperparameter tuning; production Cloud Deployment including implementation of mathematical and statistical models in scalable, production-grade cloud environments; data Management including management and processing of large-scale structured and unstructured datasets using database query languages and data management tools; model Validation and Documentation including design and execution of simulation studies, validation and theoretical justification, and production of comprehensive model risk documentation to support independent Model Risk Management (MRM) validation; and AI Agent Development including common agentic framework and context management, harness engineering, multi-agent orchestration, knowledge base integration, and safe code execution. Job Code: 10427773.

Salary Range: Annual base salary for this New York, New York-based position is $191,000 - $236,800. 

QUALIFIED APPLICANTS: Apply at gs.com and click on "Careers." NO PHONE CALLS PLEASE. ©The Goldman Sachs Group, Inc., 2026. All rights reserved. Goldman Sachs is an equal opportunity employer and does not discriminate on the basis of race, color, religion, sex, national origin, age, veteran status, disability, or any other characteristic protected by applicable law.

JobiqoTJN. Keywords: VP Engineering, Location: New York, NY - 10060

Numbers & Facts

LocationNew York, NY
Salary$191,000–$236,800 Per Year

Skills

  • Analysis Skillsunmatched
  • Artificial Intelligence (AI)unmatched
  • C++ Programming Languageunmatched
  • Cloud Computingunmatched
  • Computer Scienceunmatched
  • Data Managementunmatched
  • Data Setsunmatched
  • Database Programming Languagesunmatched
  • Documentationunmatched
  • Documentation Modelsunmatched
  • Econometricsunmatched
  • Financeunmatched
  • Forecastingunmatched
  • Knowledge Baseunmatched
  • Knowledge Managementunmatched
  • Machine Learningunmatched
  • Mathematical Modelingunmatched
  • Mathematicsunmatched
  • Model Validationunmatched
  • Monte Carlo Methodunmatched
  • Problem Solving Skillsunmatched
  • Programming Languagesunmatched
  • Python Programming/Scripting Languageunmatched
  • R Programming Languageunmatched
  • Riskunmatched
  • Risk Managementunmatched
  • Risk Modelingunmatched
  • Simulationunmatched
  • Statistical Learning Theoryunmatched
  • Statistical Modelingunmatched
  • Statisticsunmatched
  • Support Documentationunmatched
  • Time Series Analysisunmatched
  • Validation Documentationunmatched

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