Course Code: pretrainedmodels
Duration: 14 hours
Prerequisites:
  • Basic understanding of machine learning concepts
  • Familiarity with Python programming
  • Basic knowledge of data handling using libraries like Pandas

Audience

  • Data scientists
  • AI enthusiasts
Overview:

Pre-trained models are a cornerstone of modern AI, offering pre-built capabilities that can be adapted for a variety of applications. This course introduces participants to the fundamentals of pre-trained models, their architecture, and their practical use cases. Participants will learn how to leverage these models for tasks such as text classification, image recognition, and more.

This instructor-led, live training (online or onsite) is aimed at beginner-level professionals who wish to understand the concept of pre-trained models and learn how to apply them to solve real-world problems without building models from scratch.

By the end of this training, participants will be able to:

  • Understand the concept and benefits of pre-trained models.
  • Explore various pre-trained model architectures and their use cases.
  • Fine-tune a pre-trained model for specific tasks.
  • Implement pre-trained models in simple machine learning projects.

Format of the Course

  • Interactive lecture and discussion.
  • Lots of exercises and practice.
  • Hands-on implementation in a live-lab environment.

Course Customization Options

  • To request a customized training for this course, please contact us to arrange.
Course Outline:

Introduction to Pre-trained Models

  • What are pre-trained models?
  • Benefits of using pre-trained models
  • Overview of popular pre-trained models (e.g., BERT, ResNet)

Understanding Pre-trained Model Architectures

  • Model architecture basics
  • Transfer learning and fine-tuning concepts
  • How pre-trained models are built and trained

Setting Up the Environment

  • Installing and configuring Python and relevant libraries
  • Exploring pre-trained model repositories (e.g., Hugging Face)
  • Loading and testing pre-trained models

Hands-On with Pre-trained Models

  • Using pre-trained models for text classification
  • Applying pre-trained models to image recognition tasks
  • Fine-tuning pre-trained models for custom datasets

Deploying Pre-trained Models

  • Exporting and saving fine-tuned models
  • Integrating models into applications
  • Basics of deploying models in production

Challenges and Best Practices

  • Understanding model limitations
  • Avoiding overfitting during fine-tuning
  • Ensuring ethical use of AI models

Future Trends in Pre-trained Models

  • Emerging architectures and their applications
  • Advances in transfer learning
  • Exploring large language models and multimodal models

Summary and Next Steps

Sites Published:

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