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Quantitative Analytics Intern Jobs (NOW HIRING)

Trinity Industry is looking for Data Analytics Interns for our office in Dallas, TX . This position ... quantitative field. * Demonstrable experience building AI prototypes or agentic projects ...

Trinity Industry is looking for Data Analytics Interns for our office in Dallas, TX . This position ... quantitative field. * Demonstrable experience building AI prototypes or agentic projects ...

Synthesize quantitative findings into clear, compelling recommendations - communicating results to both technical and non-technical stakeholders. * Contribute to ad-hoc analytical requests that ...

Casual/seasonal & intern team members are not eligible for benefits except for state-mandated ... Minimum of 3 years of experience in risk management modeling or advanced analytics and in-depth ...

Casual/seasonal & intern team members are not eligible for benefits except for state-mandated ... Minimum of 3 years of experience in risk management modeling or advanced analytics and in-depth ...

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Quantitative Analytics Intern information

Does JP Morgan hire quants?

JP Morgan hires quantitative analysts, often called quants, for roles in risk management, trading, and financial modeling. These positions typically require strong skills in mathematics, programming, and data analysis, and may involve using tools like Python, R, or MATLAB. Internships and entry-level roles are available for students pursuing relevant degrees in finance, mathematics, or engineering.

What are the key skills and qualifications needed to thrive as a Quantitative Analytics Intern, and why are they important?

To excel as a Quantitative Analytics Intern, you need strong analytical and mathematical skills, familiarity with statistical concepts, and coursework or a degree in quantitative fields such as mathematics, finance, or engineering. Proficiency with tools like Python, R, SQL, and data visualization software, as well as experience with statistical modeling or machine learning libraries, is highly valued. Effective communication, problem-solving abilities, and attention to detail set outstanding interns apart in collaborative and fast-paced environments. These skills are vital for accurately analyzing complex data, presenting insights, and supporting data-driven decision-making within organizations.

How much do quant interns get paid?

Quantitative analytics interns typically earn between $20 and $40 per hour, depending on the company, location, and level of experience. Interns in finance or hedge funds may receive higher compensation, and some programs offer stipends or full-time equivalents during summer internships.

What does a Quantitative Analytics Intern do?

A Quantitative Analytics Intern typically supports teams by analyzing large data sets, building statistical models, and developing algorithms to solve business problems. Their work often involves using programming languages like Python or R, and tools such as Excel or SQL, to gather insights from data. Interns may assist in financial modeling, risk assessment, or market research, depending on the industry. This role provides hands-on experience in applying quantitative methods to real-world problems, preparing students for future careers in finance, technology, or data science.

Is 30 an hour good for an intern?

For a Quantitative Analytics Intern, $30 an hour is considered above average for internship pay, which typically ranges from minimum wage to around $20 per hour depending on the industry and location. Interns in specialized fields like analytics or finance often earn higher wages, especially if they possess relevant skills such as programming or data analysis. However, pay can vary based on the company's size, location, and the intern's experience level.

What is a quantitative analyst intern?

A quantitative analyst intern is a student or entry-level professional who assists in developing and applying mathematical models to analyze financial data and support investment decisions. They typically use programming languages like Python or R and work under the supervision of experienced analysts in finance or data-driven environments.

What types of projects or tasks can a Quantitative Analytics Intern expect to work on during their internship?

As a Quantitative Analytics Intern, you can expect to work on a variety of data-driven projects, such as building statistical models, analyzing financial or operational datasets, and assisting in the development of forecasting tools. Interns often collaborate with experienced quantitative analysts and data scientists, contributing to real-world problem-solving for business or investment strategies. The role typically involves coding, data cleaning, and presenting findings to team members, offering a comprehensive introduction to quantitative methods in a professional setting.
What cities are hiring for Quantitative Analytics Intern jobs? Cities with the most Quantitative Analytics Intern job openings:
What states have the most Quantitative Analytics Intern jobs? States with the most job openings for Quantitative Analytics Intern jobs include:

Ph.D. Graduate Intern - Quantitative Portfolio Risk Analytics

Risk Analytics Company

Cambridge, MA โ€ข On-site

Full-time

Posted 8 days ago


Job description

Ph.D. Graduate Intern โ€“ Quantitative Portfolio Risk Analytics (Cross-Disciplinary)

Position Overview
We are seeking an exceptional Ph.D. graduate student to join our team as a Quantitative Portfolio Risk Analytics Intern. This role focuses on developing and applying advanced analytical methods to understand portfolio risk, market structure, and complex financial systems.
We are intentionally recruiting from cross-disciplinary, research-driven backgrounds. Doctoral candidates from fields such as physics, astrophysics, math, applied mathematics, statistics, engineering, economics, computer science, quantum computing, biotech, and other data-intensive sciences are strongly encouraged to applyโ€”especially those interested in translating rigorous quantitative methods into real-world financial applications.
Key Responsibilities
  • Develop and enhance quantitative models for portfolio risk, including factor-based and statistical approachesย 
  • Analyze large, high-dimensional financial datasets to uncover structure, dependencies, and sources of riskย 
  • Design and implement analytical tools and pipelines using Python and SQLย 
  • Contribute to model validation, backtesting, and performance evaluationย 
  • Collaborate with risk, engineering, and data teams to improve model scalability and data infrastructureย 
  • Communicate complex quantitative insights through clear visualizations and technical summariesย 
  • Apply advanced methodologies from your discipline (e.g., stochastic modeling, optimization, machine learning, or geometric/topological approaches) to improve risk analyticsย 
Required Qualifications
  • Currently enrolled in a graduate Ph.D. program in a highly quantitative field (e.g., Math, Applied Mathematics, Physics, Astrophysics, Statistics, Computer Science, Engineering, Financial Engineering, Economics, Biotech or other data-driven disciplines)ย 
  • Strong foundation in probability, statistics, and numerical methodsย 
  • Proficiency in Python (NumPy, pandas, or similar) and/or SQLย 
  • Experience working with large datasets and implementing quantitative modelsย 
  • Ability to think rigorously about complex systems and translate theory into practical solutionsย 
Preferred Qualifications
  • Familiarity with quantitative finance concepts (e.g., portfolio theory, factor models, volatility modeling, Value-at-Risk)ย 
  • Experience with scientific computing, optimization, or machine learningย 
  • Background or research in cross-disciplinary areas such as:ย 
    • Statistical physics, complex systems, or network theoryย 
    • Applied or computational mathematicsย 
    • Machine learning or probabilistic modelingย 
    • Quantum computing or advanced optimization techniquesย 
    • Topological data analysis or geometric data methodsย 
  • Prior research, publications, or project work demonstrating advanced quantitative modelingย 
What Youโ€™ll Gain
  • Exposure to real-world portfolio risk problems at the intersection of finance and advanced analyticsย 
  • Opportunity to apply cutting-edge academic methods in a production environmentย 
  • Collaboration with a highly quantitative, cross-disciplinary teamย 
  • Experience working with large-scale financial data and modern analytics infrastructureย 
  • Mentorship and potential pathway to full-time quantitative rolesย 
Duration & Compensation
  • Internship: Summer 2026, with potential to extendย 
  • Paid internship (competitive, based on experience and location)
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