John Hopkins University

USA
1 Scholarships 172 Programs 3 Degree levels

The Master’s in Mathematics and Statistics at Johns Hopkins University is an advanced programme blending rigorous theoretical training with applied statistical and computational methods. It suits students with a strong undergraduate background in mathematics, statistics or a closely related discipline who plan to pursue research, technical roles in industry, or further doctoral study.

What you'll study

The programme combines core courses in pure and applied mathematics with advanced coursework in probability, statistical theory and computational methods. Typical topics include real analysis, abstract algebra, partial differential equations, numerical analysis, probability theory, statistical inference, regression and multivariate methods, and machine learning foundations. Students commonly choose electives from areas such as stochastic processes, time series, Bayesian statistics, optimization, scientific computing, and mathematical modelling in the life and physical sciences.

Most students follow either a coursework-only track or a research track that includes a supervised project or master's thesis. Coursework emphasises rigorous proofs and theoretical foundations alongside practical computation using statistical software and programming languages commonly used in the field.

Programme structure

  • Core mathematical analysis and algebra modules to ensure theoretical depth.
  • Foundational and advanced statistics modules covering inference, regression, and probability.
  • Computational and applied modules in numerical methods, optimisation, and data analysis.
  • Electives and seminar courses that allow specialisation (for example, biostatistics, financial mathematics, or machine learning).
  • A capstone element: either a research thesis under faculty supervision or an applied project coursework option.

Entry requirements

Applicants should hold a recognised bachelor’s degree in mathematics, statistics, or a closely related quantitative discipline. Strong preparation in calculus, linear algebra, multivariable calculus, probability and basic real analysis is expected. Typical application materials include academic transcripts, a personal statement outlining academic and professional goals, two or three letters of recommendation from academic or professional referees, and a curriculum vitae.

For applicants whose first language is not English, proof of English language proficiency is required in line with university policy. Admissions may also consider previous research or project experience and relevant programming skills. Standardised test requirements such as the GRE may vary by year or programme; applicants should consult the department’s admissions page for current guidance.

Career prospects

Graduates are prepared for a wide range of career paths across academia, industry and the public sector. Common roles include data scientist, quantitative analyst, statistician, research scientist, software engineer with a quantitative focus, and roles in actuarial science. The programme’s emphasis on computation and applied modelling also suits positions in biotechnology, public health analytics, finance, engineering firms, government research labs and technology companies.

Many students use the master’s as a stepping stone to PhD study in mathematics, statistics or related interdisciplinary fields. The university’s connections to research centres and industry in the Baltimore–Washington region provide opportunities for internships and collaborative projects that support career transition.

Why study at Johns Hopkins University

Johns Hopkins offers a research-intensive environment with faculty active in both theoretical and applied areas of mathematics and statistics. The university’s strengths in biomedical research, engineering and public health create interdisciplinary research and collaboration opportunities for students seeking to apply quantitative methods to real-world problems.

Students benefit from access to departmental seminars, specialised research centres, and computational resources, as well as career services and an extensive alumni network. The proximity to research institutes and industry partners enables internships and project collaborations that complement academic training and enhance professional prospects.

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