Developing a scalable business model in the insurtech market based on Machine Learning model.
Dezza, Samir
Promotor(s) :
Blavier, André
Date of defense : 26-Aug-2019/10-Sep-2019 • Permalink : http://hdl.handle.net/2268.2/7735
Details
Title : | Developing a scalable business model in the insurtech market based on Machine Learning model. |
Author : | Dezza, Samir ![]() |
Date of defense : | 26-Aug-2019/10-Sep-2019 |
Advisor(s) : | Blavier, André ![]() |
Committee's member(s) : | Denis, Pascal
Paeschen, Julien ![]() |
Language : | English |
Number of pages : | 69 |
Keywords : | [en] Fintech [en] Insurtech [en] Artificial Intelligence [en] Startup [en] Internet of things [en] Business Model Canvas |
Discipline(s) : | Business & economic sciences > Strategy & innovation |
Target public : | Researchers Professionals of domain |
Institution(s) : | Université de Liège, Liège, Belgique |
Degree: | Master en sciences de gestion (Horaire décalé) |
Faculty: | Master thesis of the HEC-Ecole de gestion de l'Université de Liège |
Abstract
[en] The purpose of this thesis is to understand the particularities of the business model used by start-up in the insurance sector. During the various chapters, the reader will be able to discover a sector that is at the gateway to a transformation of its current functioning. Forced to adapt to new disruptive elements, insurers as we know them find it difficult to be as reactive as start-ups. These disruptive elements are supported by the development of technology and artificial intelligence.
Can we develop an effective insurance business model in Belgium? What can Machine Learning models bring? These are the questions we will ask when we observe different innovative players in the market. During this thesis, we will study what new technological models bring to the different levels of the insurance value chain.
This thesis also gives a complete description of a new phenomenon in the insurance sector: Peer-to-Peer insurance. Part of this study focuses on the classification of these new types of insurance and examines their benefits. This detailed overview is then accompanied by an analysis of the disruptive elements that lead to the emergence of new business models.
The central element of this transformation concerning technology, this thesis attaches great importance to it. First of all, the theoretical aspects of Machine Learning were studied and secondly, the practical application led to the development of an analysis of a Business Model Canvas.
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