Master of Science in Data Science
Freie Universitaet Berlin · Berlin, Europe
Duration
24 mo
Tuition
No tuition fee
sourcedIntake
Winter semester
English
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Winter semester intake. Most universities admit on a rolling basis — we confirm the exact application deadline for your profile, free.
Course details verified 10 Sep 2026 — intakes, entry requirements and course facts · official source
Fee sourced Taken from the university's published fees page, not re-checked since — confirm it before you budget. See the university fees page.
About this programme
This Master's degree programme imparts skills that are necessary in order to handle the advancing digitisation of many areas of the physical and life sciences. This concerns topics such as the collection, processing, analysis and interpretation of large digital data sets. To this end, the Master's degree programme conveys the key aspects of modern data science, which is characterised by a blending of the central fields of mathematics, statistics, computer science and machine learning, taking application-related issues into account. With in-depth education in the corresponding branches of mathematics, statistics and computer science as well as in the relevant application fields of the physical and life sciences that engage in quantitative work, this programme imparts the skills needed to recognise the relevant problems in data analysis, develop and apply appropriate mathematical or computer science solutions and correctly interpret the results within the specific application context. The following profile areas are offered to students: Data Science in the Life Sciences: The Life Science track is designed for students aiming to apply data science methodologies to biological, biomedical, and health-related fields. This specialisation integrates core data science principles with domain-specific knowledge pertinent to the life sciences. Data Science Technologies: The Data Science Technologies track is tailored for students aiming to deepen their expertise in computational and algorithmic aspects of data science. This specialisation emphasises advanced technical skills, preparing graduates for roles in software engineering, artificial intelligence, and big data infrastructure. Overview The Master’s degree programme comprises 120 credits. These credits are split between modules totalling 90 credits and the Master’s thesis with its accompanying colloquium, which comprises 30 credits. The Master's degree programme is divided into a fundamental area comprising 30 credits (to be completed in the first semester) and a profile area comprising 60 credits (second and third semester). The Master’s thesis is usually written in the fourth semester. Fundamentals The following modules must be completed as part of the fundamental area comprising 30 credits: Module: Introduction to Profile Areas Module: Statistics for Data Science Module: Machine Learning for Data Science Module: Programming for Data Science It is recommended students complete the modules of the fundamental area in their first semester. Profile In the second and third semester, students may specialise in one of the following two profiles: Data Science in the Life Sciences Data Science Technologies Students of both profiles must complete a mandatory module "Ethical Foundations of Data Science" and a 15 credit elective area, in which complementary courses from the other profile or other programmes can be selected. Master's thesis with accompanying colloquium The Master's thesis is usually written in the fourth semester after at least 60 credits have been completed. The processing time is 23 weeks. During this time, the students should give a presentation on the progress of their work. For more details, please see the programme website and study regulations.
Intakes & deadlines
Winter semester
Dates confirmed for your profile · Open
Entry requirements
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English
E.G. IELTS Academic: 7
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Prerequisites
Admission Regulations Applicants must fulfil the following admission criteria: First Degree You need to have completed, or be in the process of completing, a first university degree (Bachelor's or equivalent) in a higher education programme comprising at least 180 ECTS. Computer Science & Mathematics Your first degree must be a Bachelor of Science in computer science or a first degree in a different subject. If your degree was in a different subject, your previous studies must include at least 20 ECTS in mathematics and at least 10 ECTS in computer science. The 20 ECTS in mathematics must contain at least 5 ECTS in linear algebra or calculus and at least 5 ECTS in probability theory or statistics. The 10 ECTS in computer science must contain at least 5 ECTS in algorithms and at least 5 ECTS in a higher programming language. More Information You can find more information for prospective students on our homepage. Please also read our FAQ. Before you apply, please read our homepage concerning application procedures, and admission requirements. For all inquiries about the application process, admission, orientation at Freie Universität Berlin, etc., please contact the Student Services Centre: Info-Service@fu-berlin.de. Student Services Centre
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Documents
SOP, LOR & Resume — generate them free in 2 minutes.
This is an indicative early-career range for the whole Computer Science / IT field in Europe, from official graduate-outcome data — not a figure for this programme or university, and not a guarantee of what you will earn. What you actually earn depends on the role, employer, city and your visa.
Source: get in IT (Gehaltsstatistik Informatik 2026), 2026. Market job-board data — less official than a government survey; treat as indicative.
Rupee figure converted at the 18 Aug 2026 mid-market rate; your bank's rate will be worse and currencies move, so use it for planning, not as the amount you will receive.
Fees & scholarships
No tuition fee tuition (sourced). We confirm the exact costs and the scholarships you qualify for at Freie Universitaet Berlin — free, for your profile.
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Master of Science in Data Science — FAQs
5 questions
Tuition is No tuition fee. Taken from the university's published fees page, not re-checked since — confirm it before you budget. We confirm the current fee and the scholarships you qualify for — free.
The main intake is Winter semester. Most universities admit on a rolling basis — we confirm the exact deadline for your profile, free.
Admission Regulations Applicants must fulfil the following admission criteria: First Degree You need to have completed, or be in the process of completing, a first university degree (Bachelor's or equivalent) in a higher education programme comprising at least 180 ECTS. Computer Science & Mathematics Your first degree must be a Bachelor of Science in computer science or a first degree in a different subject. If your degree was in a different subject, your previous studies must include at least 20 ECTS in mathematics and at least 10 ECTS in computer science. The 20 ECTS in mathematics must contain at least 5 ECTS in linear algebra or calculus and at least 5 ECTS in probability theory or statistics. The 10 ECTS in computer science must contain at least 5 ECTS in algorithms and at least 5 ECTS in a higher programming language. More Information You can find more information for prospective students on our homepage. Please also read our FAQ. Before you apply, please read our homepage concerning application procedures, and admission requirements. For all inquiries about the application process, admission, orientation at Freie Universität Berlin, etc., please contact the Student Services Centre: Info-Service@fu-berlin.de. Student Services Centre English: E.G. IELTS Academic: 7.
The programme runs about 24 months full-time.
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