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Optimization Quantitative Researcher – Neutrality

Optimization Quantitative Researcher – Neutrality

CompanySchonfeld
LocationNew York, NY, USA
Salary$215000 – $257100
TypePart-Time
DegreesMaster’s
Experience LevelJunior, Mid Level

Requirements

  • Master’s degree in Mathematics, Physics, Statistics, Operations Research, Financial Engineering, a related field, or foreign equivalent
  • 2 years of experience as a Quantitative Researcher focusing on areas that can increase returns and reduce costs
  • 2 years of experience with Mosek optimization and Fusion API
  • 2 years of experience with at least 3 additional optimization tools & solvers such as: CVXPY, Gurobi, SciPy, CVXOPT, Bayesian Optimization
  • 1 year of experience with KDB+/Q
  • 2 years of experience using Python and Pandas for processing large data sets
  • 2 years of professional or academic experience in conic and nonconvex optimization
  • 2 years of professional or academic experience in reinforcement learning, specifically in resource allocation and experimental design
  • 2 years of experience in global equities

Responsibilities

  • Work closely with other researchers and portfolio managers to optimize intraday global equities strategies to increase overall returns
  • Design, develop, and backtest optimization algorithms and libraries that can be expanded and generalized for the usage of other teams at Schonfeld
  • Take inputs from various quantitative models such as trade-cost model, barra risk models and others, and combine to apply to a wide range of global equities strategies in order to minimize cost and increase risk adjusted returns
  • Leverage Schonfeld’s top-notch databases, backtesting, and optimization infrastructure to develop models around alphas, execution, and risk management
  • Design, build and backtest optimization-based alphas to diversify the current strategy library
  • Evaluate and experiment with other optimization tools to upscale Schonfeld’s optimization implementation

Preferred Qualifications

    No preferred qualifications provided.