Tashia Indah Nastiti
Universitas Indraprasta PGRI

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Development of a hybrid teaching factory model based on school governance in improving employability skills of vocational students Sintha Wahjusaputri; Tashia Indah Nastiti; Yingdong Liu
Jurnal Pendidikan Vokasi Vol. 14 No. 1 (2024)
Publisher : ADGVI & Graduate School of Universitas Negeri Yogyakarta

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.21831/jpv.v14i1.65108

Abstract

This research aims to develop a framework for a hybrid teaching factory model that combines face-to-face and online learning with information and communication technology to improve employability skills in the new normal era. The research method uses the ADDIE Research and Development model, which consists of five stages: analysis, design, development, implementation, and evaluation. The research was conducted in several vocational high schools in DKI Jakarta Region, Indonesia. The findings in the research prove that the implementation of hybrid learning has an impact on students and teachers. Hybrid learning teaching factory is proven to be able to overcome frustrations and limitations between teachers and students in the learning process through online facilities, making teaching factory learning more innovative because there are variations of learning to interact and discuss, and making the classroom atmosphere conducive because students become happy and active in learning and skilled in working. The success of a hybrid teaching factory is considered mutually beneficial for both students and teachers who complete one of the teaching factory learning curriculums while industry instructors develop and work on collaborative platforms that provide useful services such as augmented reality and virtual reality-based applications.
The Integrating AI in teaching factories to advance indonesian vocational schools Sintha Wahjusaputri; Tashia Indah Nastiti; Bunyamin Bunyamin; Johan Johan
Jurnal Pendidikan Vokasi Vol. 16 No. 2 (2026)
Publisher : ADGVI & Graduate School of Universitas Negeri Yogyakarta

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.21831/jpv.v16i2.91160

Abstract

This study aims to develop and evaluate an Artificial Intelligence (AI)-based teaching factory model to enhance students’ vocational competencies in alignment with industry standards. It addresses a gap in the existing literature, where teaching factory models and AI applications in education have largely been investigated separately, with limited empirically validated frameworks integrating AI to support adaptive learning and real-time performance assessment in vocational education. In this study, an AI-based teaching factory is operationally defined as a learning environment that utilizes AI to provide personalized instruction, real-time performance analytics, and industry-simulated production workflows. A mixed-methods research approach was employed, comprising needs analysis, system design and development, field trials, and effectiveness evaluation. Instrument validity was assessed using Aiken’s V, while reliability was evaluated using Cronbach’s alpha. Qualitative data collected through interviews, observations, and document analysis were analyzed thematically to identify patterns related to learning outcomes, implementation processes, and operational challenges. The study was conducted at SMKN 1 Pacet Cianjur and SMKN 11 Bandung in West Java Province, Indonesia. The findings indicate that the proposed AI-based teaching factory model significantly enhances students’ problem-solving skills, critical thinking, and readiness for technology-driven workplaces. This study contributes a validated and replicable implementation framework for integrating AI into vocational teaching factories and provides practical recommendations for teacher capacity building, curriculum alignment, and infrastructure development to support sustainable, industry-relevant vocational education.