Master as a Service: A multidisciplinary approach to Big Data teaching

Producció científica: Capítol de llibreContribució a congrés/conferènciaAvaluat per experts

4 Cites (Scopus)

Resum

The recent and rapid growth of data-driven applications, fostered by the advent of enhanced Information and Communication Technologies (ICTs) together with the broad availability of modern high-performance storage and computing infrastructures, has created a considerable gap of experts in this new field. The quick evolution of these technologies, their dissimilarities with traditional approaches, and the broad skills set required to master them, might prevent existing professionals working in industry to gain high quality knowledge and experience in Big Data related areas. Therefore, universities and teaching professionals must propose feasible and effective alternatives to train professionals and students in these topics. The purpose of this paper is to present the Master as a Service (MaaS) approach, that is currently being used to train students in Big Data- related areas (e.g., eHealth, Digital Transformation, etc.), following a multidisciplinary, Project Based Learning strategy. More specifically, students coming from different master's degrees and undergraduate backgrounds (ranging from management studies to computer engineering, including architects, social and physical sciences) are trained to address latent and future challenges in Big Data and High-Performance Computing technologies by combining their profiles, and exposing them to real-world challenges that require the very best of each different profile. The results obtained from the implementation of the MaaS approach during the last two years in terms of both student satisfaction and employability rate, confirm the benefits of this method and encourage practitioners to keep working in this direction.

Idioma originalAnglès
Títol de la publicacióProceedings - TEEM 2019
Subtítol de la publicació7th International Conference on Technological Ecosystems for Enhancing Multiculturality
EditorsMiguel Angel Conde-Gonzalez, Francisco Jesus Rodriguez-Sedano, Camino Fernandez-Llamas, Francisco Jose Garcia-Penalvo
EditorAssociation for Computing Machinery
Pàgines534-538
Nombre de pàgines5
ISBN (electrònic)9781450371919
DOIs
Estat de la publicacióPublicada - 16 d’oct. 2019
Esdeveniment7th International Conference on Technological Ecosystems for Enhancing Multiculturality, TEEM 2019 - Leon, Spain
Durada: 16 d’oct. 201918 d’oct. 2019

Sèrie de publicacions

NomACM International Conference Proceeding Series

Conferència

Conferència7th International Conference on Technological Ecosystems for Enhancing Multiculturality, TEEM 2019
País/TerritoriSpain
CiutatLeon
Període16/10/1918/10/19

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