5.00
(2 Ratings)

Generative AI

Categories: AI
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About Course

Students will be able to understand and apply generative AI techniques to solve real-world problems, culminating in the creation of a generative AI-driven project relevant to industry needs.

Module 1: Introduction to Generative AI

Lesson Plan:

  • Learning Objectives: Understand what generative AI is and its applications.
  • Real World Example: Generative AI in content creation (e.g., text, images, music).
  • Activities:
    1. Watch a video introduction to generative AI.
    2. Discuss examples of generative AI in various industries.
    3. Explore a simple generative AI tool (e.g., ChatGPT for text generation).
  • Discussion Questions:
    • How can generative AI be used to address real-world challenges?
    • What are some ethical considerations of using generative AI?
  • Ways to Expand Learning:
    • Research different generative AI models and their uses.
    • Join online forums or groups focused on AI innovation.

Module 2: Fundamentals of Generative AI Models

Lesson Plan:

  • Learning Objectives: Learn about different types of generative AI models and their functions.
  • Real World Example: Generative Adversarial Networks (GANs) for image synthesis.
  • Activities:
    1. Read an article on GANs and their applications.
    2. Watch a tutorial on creating a simple GAN model.
    3. Discuss how GANs can be applied in various industries.
  • Discussion Questions:
    • How do GANs differ from other generative models?
    • What are the limitations of GANs in practical applications?
  • Ways to Expand Learning:
    • Experiment with pre-built GAN models.
    • Explore advanced topics in generative AI research.

Module 3: Designing a Generative AI Project

Lesson Plan:

  • Learning Objectives: Design a project plan for a generative AI application.
  • Real World Example: Creating a chatbot for customer service.
  • Activities:
    1. Define the problem your project will address.
    2. Outline the steps needed to develop your AI solution.
    3. Create a project proposal with goals, research, and implementation strategies.
  • Discussion Questions:
    • What are the key components of a successful AI project proposal?
    • How can you ensure your project aligns with industry needs?
  • Ways to Expand Learning:
    • Review case studies of successful generative AI projects.
    • Seek feedback from industry experts on your project proposal.

Module 4: Developing and Training Generative AI Models

Lesson Plan:

  • Learning Objectives: Understand the development and training processes of generative AI models.
  • Real World Example: Training a text generation model for content creation.
  • Activities:
    1. Follow a tutorial on training a generative model using a dataset.
    2. Experiment with adjusting model parameters and evaluating results.
    3. Document your development process and findings.
  • Discussion Questions:
    • What challenges might you face while training a generative AI model?
    • How can you improve the performance of your model?
  • Ways to Expand Learning:
    • Participate in AI development workshops.
    • Explore additional resources on model optimization.

Module 5: Evaluating Generative AI Solutions

Lesson Plan:

  • Learning Objectives: Evaluate the effectiveness and impact of generative AI solutions.
  • Real World Example: Assessing the performance of an AI-generated marketing campaign.
  • Activities:
    1. Use evaluation metrics to assess your AI model’s performance.
    2. Collect feedback from test users and analyze results.
    3. Prepare a report summarizing your findings and recommendations.
  • Discussion Questions:
    • What metrics are most useful for evaluating generative AI solutions?
    • How can you incorporate user feedback into improving your project?
  • Ways to Expand Learning:
    • Study advanced evaluation techniques.
    • Network with professionals who specialize in AI evaluation.

Module 6: Presenting Your Generative AI Project

Lesson Plan:

  • Learning Objectives: Develop and deliver a presentation of your generative AI project.
  • Real World Example: Creating a presentation for a pitch to potential investors.
  • Activities:
    1. Design a presentation highlighting your project’s objectives, process, and results.
    2. Practice delivering your presentation to peers for feedback.
    3. Revise your presentation based on feedback and prepare for the final presentation.
  • Discussion Questions:
    • What are the key elements of an effective project presentation?
    • How can you effectively communicate the value of your AI solution?
  • Ways to Expand Learning:
    • Attend presentations or webinars on AI innovation.
    • Join a public speaking group to improve presentation skills.

 

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What Will You Learn?

  • You will learn to design, develop, and present generative AI solutions for real-world applications

Student Ratings & Reviews

5.0
Total 2 Ratings
5
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1
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RK
10 months ago
The course exceeded my expectations. The blend of theory and practical exercises made learning engaging and effective. The project work was especially insightful.
AK
10 months ago
This course provided a clear and practical introduction to generative AI. The hands-on projects were particularly useful for understanding real-world applications.