MASTER IN BIG DATA ANALYTICS FOR BUSINESS
Lieu des études | France, paris |
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Type | Master, temps plein |
Langue d'étude | anglais |
Frais de scolarité | 18 900 € par année |
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Exigences linguistiques | anglais |
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Autres exigences | Au moins 2 références doivent être fournies. |
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Plus d'informations |
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Aperçu
The Master in Big Data Analytics for Business is a 4-term program completely taught in English which aims at training data scientists.
Participants are exposed to the leading-edge fundamentals in data-driven decision-making by extracting knowledge and insights from Big Data. They will learn how to solve managerial problems by critically asking questions in the spirit of ‘What do we know?’ (Data driven) rather than ‘What do we think? (Gut feeling).
Structure du programme
The Master in Big Data Analytics for Business is designed to help participants mastering the business knowledge, the methods and the analytical tools to convert BIG data into BIG insights in marketing, finance and operations.
The program is offered on a full-time basis and consists of 3 terms of academic courses and a professional experience. The curriculum is developed around core modules in business, technology, and methodology, as well as specialized courses in marketing, finance, and operations.
In a connected world, data provide companies with the opportunity to align their marketing, finance and operations strategy with objective facts and figures. Participants will learn how to become data-driven managers, and will be able to spot analytical opportunities in a given business context.
Opportunités de carrière
Participants will acquire the skills to discover key information by reviewing company data and taking into consideration the relevent business context. They will become decision makers with strong fundamentals in business and analytics.
They are trained to become data scientists and could work as:
Digital/Online Marketers;
Web Analysts;
Consumer Intelligence Experts;
Market Researchers;
Database Marketers;
Customer Insights Managers;
Financial Analysts;
Credit Scoring Analysts;
Fraud Detection Analysts,
or in any other data-driven related positions.