Python/Quantitative Analysis Developer at CleverCX
Remote, Oregon, USA -
Full Time


Start Date

Immediate

Expiry Date

26 Nov, 25

Salary

90.0

Posted On

26 Aug, 25

Experience

0 year(s) or above

Remote Job

Yes

Telecommute

Yes

Sponsor Visa

No

Skills

Statistics, Physics, Financial Instruments, Python, Financial Modeling, Stochastic Processes, Black Scholes, Financial Analysis, Sql, Version Control, Trading Strategies, Learning Techniques, Numpy, Debugging, Financial Applications, Derivatives, Risk Metrics

Industry

Financial Services

Description

COMPANY OVERVIEW

CleverCX is a Charlotte-based fintech company founded in 2022. We focus on transforming how financial services companies engage with their clients digitally. CleverCX offers tools and platforms designed to modernize client interactions, emphasizing lead generation, financial planning, proposal creation, and AI-driven engagement.
Job Overview: We are looking for a highly skilled Python Developer with a strong background in quantitative analysis and financial calculations to join our team as a full-time consultant. In this role, you will develop and optimize software systems for complex financial modeling, risk analysis, and other quantitative applications. Your work will directly contribute to building tools that support data-driven decision-making and innovative financial solutions.

REQUIRED QUALIFICATIONS:

  • Strong Python Programming Skills: Proficiency in Python, with experience in libraries such as NumPy, Pandas, SciPy, Matplotlib, and SymPy for numerical and financial analysis.
  • Experience in integrating python code into node.js/react technology stack.
  • Quantitative Analysis Background: Solid understanding of quantitative finance, including financial modeling, asset pricing, risk management, and derivatives. Experience working with complex financial instruments such as options, bonds, and equities.
  • Mathematical & Statistical Expertise: In-depth knowledge of mathematics, particularly probability theory, stochastic processes, optimization, and time series analysis.
  • Experience with Financial Calculations: Hands-on experience in implementing financial calculations such as Black-Scholes, Monte Carlo simulations, option pricing, risk metrics (VaR, CVaR), and other advanced quantitative techniques.
  • Data Handling & Manipulation: Expertise in handling large datasets, performing statistical analysis, and using SQL or NoSQL databases to retrieve and process financial data.
  • Performance Optimization: Ability to write high-performance code, optimize algorithms, and work with large-scale data processing frameworks.
  • Version Control: Proficiency in Git for version control and collaboration within development teams.
  • Problem Solving & Debugging: Strong analytical and troubleshooting skills, with a methodical approach to solving complex quantitative and technical problems.

PREFERRED QUALIFICATIONS:

  • Advanced Degree: Master’s in Quantitative Finance, Mathematics, Physics, Statistics, or related field and/or Professional Designations: Chartered Financial Analyst (CFA) or Chartered Alternative Investment Analyst (CAIA).
  • Financial Software Experience: Experience working with financial modeling platforms, trading platforms, or financial risk management tools.
  • Cloud Computing: Familiarity with cloud services such as AWS, GCP, or Azure for deploying financial applications or performing large-scale data processing.
  • Big Data Technologies: Experience with Hadoop, Spark, or other big data frameworks for processing large financial datasets.
  • Machine Learning: Experience with machine learning techniques applied to quantitative finance, such as predictive modeling or algorithmic trading strategies.
    Job Types: Full-time, Contract
    Pay: $70.00 - $90.00 per hour
    Work Location: Remot
Responsibilities
  • Financial Modeling & Calculations: Design, implement, and optimize algorithms and models for financial analysis, including risk models, portfolio management, pricing strategies, and other quantitative financial applications.
  • Data Processing & Analysis: Write efficient Python code to handle large datasets, process financial data, and perform statistical analysis. Ensure accuracy and integrity of data used in financial calculations.
  • Algorithm Development: Develop mathematical models, simulations, and optimization algorithms for financial forecasting, market analysis, and trading strategies.
  • Optimization: Identify areas for performance improvement in financial models and data processing pipelines. Optimize code for speed and scalability.
  • Tool Development: Build tools and libraries to support quantitative analysis, including backtesting platforms, data visualization tools, and financial calculators.
  • Collaboration: Work closely with quantitative analysts, data scientists, and other developers to understand requirements and deliver effective solutions. Collaborate with financial teams to understand domain-specific needs and translate them into code.
  • Testing & Documentation: Ensure the reliability of financial calculations and models through robust unit testing. Document algorithms, code, and systems for future use and clarity.
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