Corporate Approach in Work-Integrated Learning for Students of Engineering Programs
Keywords:
bachelor's degree program; corporate approach; engineering education; work-integrated learning; project workAbstract
The intensifying integration of engineering, science, and education, along with the growing requirements for graduates’ professional competencies, underscores the need for innovative and systematically structured approaches to engineering education. One such approach is the corporate model, which involves coordinated actions of all educational stakeholders and the integration of students into real industrial environments. This study proposes an adapted model of work-integrated learning based on a corporate approach, implemented in the engineering programs of a university in Kazakhstan. Unlike many models described in the literature, the emphasis is placed not only on industrial practice but also on comprehensive resource and organizational coordination between universities and companies. The model incorporates principles of institutional partnership, joint program design and assessment, and is supported by empirical analysis of company attractiveness factors, interaction formats, and the evaluation of four workplace dimensions. The pilot implementation of the model demonstrated an improvement in students’ skills ranging from 5.46% to 16.74%. A total of 91.67% of students positively assessed the organization of workplace learning, and 83.33% highlighted the overall attractiveness of the model. The effectiveness of the model was confirmed using t-tests and one-way analysis of variance (ANOVA). The findings suggest that this model can be recommended for implementation in engineering programs of universities in developing countries.
https://doi.org/10.26803/ijlter.24.8.12
References
Baboolal, S. O., & Singaram, V. S. (2023). Specialist training: workplace-based assessments impact on teaching, learning and feedback to support competency-based postgraduate programs. BMC Medical Education, 23, 941. https://doi.org/10.1186/s12909-023-04922-w
Beke, E. & Tick, A. (2024). Applicability of Education 4.0 in higher education: Engineering students’ survey. Journal of Technology and Science Education, 14(2), 529-552. https://doi.org/10.3926/jotse.1845
Brink, S. C., de Hei, M., Sjoer, E., Carlsson, C. J., Georgsson, F., Keller, E., … Admiraal, W. (2024). Curriculum Agility principles for transformative innovation in engineering education. European Journal of Engineering Education, 50(3), 455-471. https://doi.org/10.1080/03043797.2024.2398165
Coleman, Ph. (2025). Explaining the impact of student relatedness experiences within practical placements. International Journal of Work-Integrated Learning, 26(2), 177-189. Retrieved from https://www.ijwil.org/
Cranfield, D. J., Tick, A., Venter, I. M., Blignaut, R. J., & Renaud, K. (2021). Higher Education Studetns’ Perception of Online Learning during COVID-19 – A Comparative Study. Education Sciences, 11(8), 1-17. https://doi.org/10.3390/educsci11080403
Dean, B., Yanamandram, V., Eady, M. J., Moroney, T., O'Donnell, N., & Glover-Chambers, T. (2020). An Institutional Framework for Scaffolding Work-Integrated Learning Across a Degree. Journal of University Teaching & Learning Practice, 17(4), 1-14. Retrieved from https://ro.uow.edu.au/jutlp/vol17/iss4/6
Díaz, B., Delgado, C., Han, K., Lynch, C. (2025). A scaffolding model for designing and implementing work-integrated learning experiences based on the analysis of the university and company's arrangements. Higher Education. https://doi.org/10.1007/s10734-025-01442-y
Gamage, K. A. A., & Dehideniya, S. C. P. (2025). Unlocking Career Potential: How Micro-Credentials Are Revolutionising Higher Education and Lifelong Learning. Education Sciences, 15(5), 525. https://doi.org/10.3390/educsci15050525
García-García, R. M., Lara, V., Membrillo-Hernández, J., & Ruiz Cantisani, M. I. (2024). Developing transversal (soft) competencies in Higher Education Engineering students: the role of the Training Partners in the challenge-based learning model. 22nd LACCEI International Multi-Conference for Engineering, Education, and Technology: Sustainable Engineering for a Diverse, Equitable, and Inclusive Future at the Service of Education, Research, and Industry for a Society 5.0 (pp. 1-6). San Jose, Costa Rica. https://doi.org/10.18687/LACCEI2024.1.1.1898
Gilbert, G., Turner, M., & Haass, O. (2022). Working up to work: Perceived employability of students commencing a project management degree. Project Leadership and Society, 3, 100048. https://doi.org/10.1016/j.plas.2022.100048
Gupta, P. B., & Gupta, B. L. (2021). Successful Mentoring of Students in Higher Education Institutions - Assess Pre and Post Mentoring Skills. University News, 59(26), 17-22. Retrieved from https://www.researchgate.net/publication/379037622_Successful_Mentoring_of_Students_in_Higher_Education_Institutions_-Assess_Pre_and_Post_Mentoring_Skills
Gutiérrez-Martínez, Y., Bustamante-Bello, R., Navarro-Tuch, S. A., López-Aguilar, A. A., Molina, A., & Álvarez-Icaza Longoria, I. (2021). A Challenge-Based Learning Experience in Industrial Engineering in the Framework of Education 4.0. Sustainability, 13, 9867. https://doi.org/10.3390/su13179867
Karstina, S. (2022). The Role of Inter-institutional Cooperation in Engineering Training. In: Auer, M.E., Hortsch, H., Michler, O., Köhler, T. (Eds.), Mobility for Smart Cities and Regional Development - Challenges for Higher Education. ICL 2021. Lecture Notes in Networks and Systems, 389, Springer, Cham. https://doi.org/10.1007/978-3-030-93904-5_7
Karstina, S. G. (2025). Application of Integrated Learning Technologies in Engineering Training. In: Auer, M.E., Rüütmann, T. (Eds.), Futureproofing Engineering Education for Global Responsibility. ICL 2024. Lecture Notes in Networks and Systems, 1260, 630-637. Springer, Cham. https://doi.org/10.1007/978-3-031-85652-5_62
Khampirat, B. (2021). The Impact of Work-Integrated Learning and Learning Strategies on Engineering Students’ Learning Outcomes in Thailand: A Multiple Mediation Model of Learning Experiences and Psychological Factors. IEEE Access, 9, 111390–111406. https://doi.org/10.1109/ACCESS.2021.3055620
Klein, S. B., & Mafra Pereira, F. C. (2020). Entrepreneurial University: Conceptions and Evolution of Theoretical Models. Revista Pensamento Contemporâneo em Administração, 14 (4), 20-35. https://doi.org/10.12712/rpca.v14i4.43186
Lavado-Anguera, S., Velasco-Quintana, P. - J., & Terrón-López, M. - J. (2024). Project-Based Learning (PBL) as an Experiential Pedagogical Methodology in Engineering Education: A Review of the Literature. Education Sciences, 14, 617. https://doi.org/10.3390/educsci14060617
Marrero-Rodríguez, J. - R., & Stendardi, D. (2023). The Implementation of Dual Vocational Education and Training in Spain: Analysis of Company Tutors in the Tourism Sector. International Journal for Research in Vocational Education and Training (IJRVET), 10 (1), 90–112. https://doi.org/10.13152/IJRVET.10.1.5
Namjildorj, O. (2025). The requirements of integrating soft skills into higher education curricula within the context of transformative education. International Journal of Learning, Teaching and Educational Research, 24(3), 725–739. https://doi.org/10.26803/ijlter.24.3.34
Niiranen, S. (2021). Supporting the Development of Students’ Technological Understanding in Craft and Technology Education via the Learning by Doing Approach. International Journal of Technology and Design Education, 31, 81–93. https://doi.org/10.1007/s10798-019-09546-0
Nørgaard, B., Chen, J., Smink, C. K., Guerra, A. & Du, X. (2023). Engineering educators’ professional learning for educational change in a PBL-base and cross-institutional programme in Africa: a Q-study. European Journal of Engineering Education, 49(2), 236–256. https://doi.org/10.1080/03043797.2023.2250738
Pennaforte, A. & Fannon, A. -M. (2025). Enhancing neurodivergent student wellbeing in co-operative education: A theoretical model and research agenda. International Journal of Work-Integrated Learning, 26(1), 99-111. Retrieved from https://hal.science/hal-04973436v1
Pérez-Rodríguez, R., Lorenzo-Martin R., Trinchet-Varela, C. A., Simeón-Monet, R. E., Miranda, J., Cortés, D., & Molina, A. (2022). Integrating Challenge-Based-Learning, Project-Based-Learning, and Computer-Aided Technologies into Industrial Engineering Teaching: Towards a Sustainable Development Framework. Integration of Education, 26(2), 198–215. https://doi.org/10.15507/1991-9468.107.026.202202.198-215
Pizzagalli, S. L., Mahmood, K., Boychuk, R., Otto, T., & Kuts, V. (2025). A workflow for extended reality-based learning in engineering education. Proceedings of the Estonian Academy of Sciences, 74(2), 103–108. https://doi.org/10.3176/proc.2025.2.03
Publications Office of the European Union. (2023). European Commission: Directorate-General for Employment, Social Affairs and Inclusion, Employment and social developments in Europe. Retrieved from https://data.europa.eu/doi/10.2767/089698
Qiu, Y., Ishak, N. A., Chiu, T. K. F., & Tan, C. (2025). AI-assisting technology and social support in enhancing deep learning and self-efficacy among primary school students in mathematics in China. International Journal of Learning, Teaching and Educational Research, 24(2), 21–37. https://doi.org/10.26803/ijlter.24.2.2
Qu, L., Chen, Y., Rooij, R., & de-Jong, P. (2020). Cultivating the Next Generation Designers: Group Work in Urban and Regional Design Education. International Journal of Technology and Design Education, 30, 899–918. https://doi.org/10.1007/s10798-019-09540-6
Radko, N., Belitski, M. & Kalyuzhnova, Y. (2023). Conceptualising the entrepreneurial university: the stakeholder approach. The Journal of Technology Transfer, 48, 955–1044. https://doi.org/10.1007/s10961-022-09926-0
Rahman, T., Fitria, N., Nurhidayah, E. & Yuliandani, I. (2023). Effects of Project-Based Learning on Employability Skills. Review of Islamic Studies, 2(1), 1-10. https://doi.org/10.35316/ris.v2i1.473
Reddy, L. (2024). The changing faces of work integrated learning. In L. Reddy, J. Andrews, & A. Cram (Eds.), Work-integrated learning in engineering, built environment and technology: Strategies for change and innovation (pp. 3–15). Springer. https://doi.org/10.1007/978-3-031-65964-5_1
Rozan, A. D., Syahri, B., Prasetya, F., Fortuna, A., Samala, A. D., & Rawas, S. (2024). The impact of project-based learning on 21st century skill development of vocational engineering students: A systematic literature review. Journal of Engineering Researcher and Lecturer, 3(3), 189–212. https://doi.org/10.58712/jerel.v3i3.168
Servant-Miklos, V., Holgaard, J. E., & Kolmos, A. (2023). Sustainability Matters: The Evolution of Sustainability Awareness, Interest and Engagement in PBL Engineering Students. Journal of Problem Based Learning in Higher Education, 11(1), 124–154. https://doi.org/10.54337/ojs.jpblhe.v11i1.7374
UNDP, JSC Workforce Development Centre (WDC), AERC. (2024). The report “In-demand skills in Kazakhstan in the post-COVID-19 era: present and future”. Retrieved from https://www.undp.org/kazakhstan/publications/emerging-skills-and-professions-kazakhstan-post-covid-19-era
Thiruchadai Pandeeswari, S., Jeyamala, C., Pudumalar, S., Uma, K. V., & Deisy, C. (2022). An Empirical Study on the Impact of Industry Supported Courses in enhancing the Graduate Outcomes. Journal of Engineering Education Transformations, 35(Special Issue 1), 262–269. https://doi.org/10.16920/jeet/2022/v35is1/22038
Valero, M. (2022). Challenges, difficulties and barriers for engineering higher education. Journal of Technology and Science Education, 12(3), 551-566. https://doi.org/10.3926/jotse.1696
Van Eck, R., Jordaan, A., & Wadee, A. A. (2019). A Creative Pedagogy for Learner-Content Interactions as Work Placement Experience at Universities of Technology. International Multidisciplinary Information Technology and Engineering Conference (IMITEC) (pp. 1-6). Vanderbijlpark, South Africa. https://doi.org/10.1109/IMITEC45504.2019.9015853
Vilanova, A. R., Arino, X., Gali, M., Palou, L., & Palma, J. (2022). COMPASS: addressing the challenge of digital skills skilling from the regional ecosystem perspective. A: SEFI 50th Annual conference of The European Society for Engineering Education. Towards a new future in engineering education, new scenarios that European alliances of tech universities open up (pp. 815-824). Barcelona, Spain. https://doi.org/10.5821/conference-9788412322262.1463
Wardani, W., Rosidin, U., & Yulianti, D. (2025). The 7C skills framework: A measurement tool to enhance global competence in multicultural learning based on engagement theory. International Journal of Learning, Teaching and Educational Research, 24(2), 1–17. https://doi.org/10.26803/ijlter.24.2.1
Weng, T. - S. (2024) Animation and Manga on Improvement in Students’ Problem-Solving Capabilities: Comparison of Two Psychometric Models. Education Sciences, 14, 808. https://doi.org/10.3390/educsci14080808
Wurdinger, S., & Allison, P. (2017). Faculty perceptions and use of experiential learning in higher education. Journal of e-Learning and Knowledge Society, 13(1), 15-26. https://doi.org/10.20368/1971-8829/1278
Yan, T., Shi, Y., Huang, L., Lin, Y., & Lu, D. (2024). Innovative Application of a First-Class Weaving Technology Course: Visual Error Design in Experimental Practice. Design Studies and Intelligence Engineering (DSIE), 10-19. https://doi.org/10.3233/FAIA231420
Zhuang, T., Oh, M., & Kimura, K. (2025). Modernizing higher education with industrial forces in Asia: a comparative study of discourse of university–industry collaboration in China, Japan and Singapore. Asia Pacific Education Review, 26(1), 195–210. https://doi.org/10.1007/s12564-024-10033-y
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