Pace University

USA
1 Scholarships 101 Programs 3 Degree levels
Masters

Master's in Management Sciences and Quantitative Methods

Offered at Pace University, USA
DegreeMasters
FieldManagement Sciences and Quantitative Methods.
B

Cost & earnings at Pace University What students borrow here, and what they go on to earn

You borrow $23,250 median federal debt
You repay $264/mo over 10 years
Graduates earn $70,378 10 yrs after entry
Debt clears in 0.8 yrs of the salary premium
US Department of Education figures See the full breakdown →
A

Management Sciences graduates earn a median $87,604 Across 365 US programmes, two years after finishing

See the degree grade →

The Master’s in Management Sciences and Quantitative Methods at Pace University is a practice-oriented programme that trains students to apply mathematical, statistical and computational techniques to real-world managerial problems. It suits graduates and professionals with quantitative aptitude who want to pursue analytics-driven roles in business, finance, operations or public-sector organisations.

What you'll study

This programme combines foundations in mathematical modelling and statistics with applied training in data handling, optimisation and forecasting. Typical subject areas include mathematical programming and optimisation (linear and integer programming), regression and time-series forecasting, stochastic models and simulation, decision analysis, data mining and machine learning methods, database and data-management techniques, and programming for analysis (commonly R, Python or SQL).

Coursework usually mixes core modules that establish quantitative methods and statistical inference with electives that allow specialisation in areas such as supply chain analytics, financial analytics, healthcare operations, or business intelligence. Many students complete a capstone project, practicum or internship that applies methods to an organisation’s dataset or a real business problem, producing a substantial applied report or portfolio.

Entry requirements

Applicants are normally expected to hold a recognised bachelor’s degree. Programmes favour candidates with evidence of quantitative preparation — for example, coursework in calculus, linear algebra, statistics or introductory programming — but applicants from other backgrounds who can demonstrate quantitative aptitude and relevant experience may also be considered.

  • Academic transcripts from undergraduate study.
  • A current résumé or CV showing relevant work or research experience.
  • A personal statement describing motivation and goals for graduate study.
  • Letters of recommendation may be requested for some applicants.
  • Demonstration of English language proficiency is required for applicants whose degree was not taught in English.

Standardised test requirements (for example, GMAT or GRE) and exact admissions criteria can vary by programme and applicant profile; prospective students should consult Pace University’s admissions guidance for up-to-date details and available waivers.

Career prospects

Graduates are prepared for analytical and decision-focused roles across industries. Common job titles include business analyst, operations analyst, data analyst, quantitative analyst, supply chain analyst, risk analyst and management consultant. With further technical upskilling, alumni also move into specialised data science or machine-learning positions.

Employers include financial services and insurance firms, consulting companies, healthcare providers, logistics and manufacturing companies, technology firms, and public-sector agencies. The programme’s applied projects and internships help students build a portfolio of work and professional contacts that support transition into these roles.

Why study at Pace University

Pace’s business and quantitative programmes emphasise applied learning and industry relevance. Located in the New York metropolitan area, the university provides proximity to a wide range of employers and internship opportunities across finance, consulting and technology sectors. Faculty teaching the programme typically combine academic expertise with applied research and professional experience in analytics and operations.

Students benefit from career services, connections to employer networks, and opportunities to work on real datasets through capstone projects or practicum placements. Smaller cohort sizes mean focused attention from instructors and the chance to build strong peer networks that support career development after graduation.

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Programme details are indicative and may change — always verify current information with the official university website before applying.