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Course Outline
Introduction to SLMs in the Educational Sector
- Overview of Small Language Models
- The progression of AI in education
- Advantages of SLMs for individualized learning
Creating Learning Experiences with SLMs
- Analyzing learner requirements and preferences
- Constructing adaptive learning pathways
- Aligning SLMs with instructional design frameworks
Applying SLMs in Educational Contexts
- Configuring SLMs for classroom and online study
- Producing interactive content using SLMs
- Strategies for sustaining student engagement
Measuring SLM Performance in Learning Outcomes
- Assessment methods for AI-centric learning
- Data analysis and learning analytics
- Iterative improvement and feedback mechanisms
Challenges and Ethical Implications
- Mitigating biases in AI systems
- Safeguarding data privacy and security
- Facilitating fair access to AI resources
Practical Projects and Case Studies
- Developing a mini-project leveraging SLMs
- Analyzing case studies of SLM applications
- Group presentations and peer evaluations
Summary and Future Directions
Requirements
- Foundational knowledge of machine learning principles
- Background in educational technology or instructional design
- A keen interest in AI-based educational solutions
Target Audience
- Educational technologists
- Instructional designers
- AI developers focused on education
14 Hours