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An ESCO-Based Skill Gap Detection Framework for SMEs: A Design Science Prototype of an Intelligent Learning Management System

delete2026-08-01
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OA
AI
A
Angelo Leogrande *
M
Mauro Di Molfetta
N
Nicola Magaletti
V
Valeria Notarnicola
M
Maria Giovanna Trotta
DOI:10.3390/asi9080162delete
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Abstract

Abstract

En 中文
The misalignment between workforce competences and the requirements of digitally evolving occupations is a critical barrier to SME competitiveness. This study’s primary contribution is theoretical and methodological: it reconceptualizes the workforce skill gap as a firm-level human-capital–technology complementarity constraint rendered observable and commensurable through the ESCO taxonomy, and abstracts four transferable design principles—commensurability, macro–micro integration, a transferable metric, and modular extraction. Drawing on human capital theory, the knowledge-based view, and skill-biased technical change, the framework maps anonymized employee CVs to ESCO occupational requirements through a deterministic natural language processing procedure and computes a Skill Gap Indicator as the complement of evidenced competence coverage. A prototype Intelligent Learning Management System, developed within the LUCE project, instantiates the framework as a proof of concept, translating identified gaps into targeted training recommendations. Applied to a convenience sample of publicly available professional profiles, the indicator has a mean of 0.956, interpreted as a conservative upper-bound estimate rather than a literal deficit. The empirical results are an exploratory demonstration that motivates, rather than confirms, the posited link between skill gaps and firm performance; a cross-sectional test found no significant association, which the design cannot adjudicate. Confirmatory testing would require sample expansion, employer-provided workforce records, and a longitudinal design, identified as priorities for future research. The study thus contributes a standardised, interoperable, and transferable approach to measuring and comparing workforce skill gaps in SMEs.
Keywords:
ESCO
skill gap analysis
workforce reskilling
digital transformation
SMEs
human capital
people analytics
intelligent learning management system
natural language processing

Journal

Applied System Innovation cover
Applied System Innovation
IF:
3.7
Papers:
934
Citations:
1.9K

Organization

L
lum enterprise s.r.l.
Scholars:
10
Papers: 3
Citations: 0
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