This course emphasizes simplicity, clarity, and practical understanding of deep learning workflows, enabling learners to develop neural network models efficiently without deep framework complexity.
Overview
Deep Learning with Keras is a focused two-day training program designed to help participants quickly build, train, and evaluate deep learning models using the Keras high-level API. This course emphasizes simplicity, clarity, and practical understanding of deep learning workflows, enabling learners to develop neural network models efficiently without deep framework complexity, while still following best practices for real-world AI applications.
Learning Outcomes
โข Understand deep learning with Keras
โข Learn neural network development basics
โข Understand Keras model workflows
โข Gain knowledge of model training techniques
โข Learn image and speech AI concepts
โข Understand model optimization basics
โข Explore Keras libraries and tools
โข Identify practical deep learning use cases
Duration & Delivery Mode
14 hours
Target Audience
โข Aspiring deep learning practitioners
โข Data scientists and machine learning engineers
โข Software developers working with AI models
โข AI and analytics professionals
โข Students and early-career technologists
Pre-requisites
โข Basic understanding of machine learning concepts
โข Familiarity with Python programming fundamentals
โข Awareness of neural networks and deep learning terminology
โข Interest in rapid deep learning model development
Skillset Achieved
โข Building deep learning models using Keras
โข Implementing neural network architectures efficiently
โข Training and evaluating deep learning models
โข Applying Keras to practical AI use cases
โข Using responsible and interpretable deep learning practices
Course Outcome
By the end of this training, participants will be able to build and train deep learning models using Keras, prepare and preprocess data effectively, implement CNN-based solutions, optimize model performance, and apply responsible deep learning practices in practical AI projects.
Course Outline
Introduction to Keras and Deep Learning Workflow
โข Overview of Keras and its role in deep learning
โข Relationship between Keras and TensorFlow
โข End-to-end deep learning workflow using Keras
โข When to use Keras for model development
Building Neural Networks with Keras
โข Sequential and functional API concepts
โข Layers, activation functions, and loss functions
โข Compiling and training neural networks
โข Evaluating model performance
Data Preparation for Keras Models
โข Preparing datasets for deep learning
โข Data normalization and preprocessing
โข Training, validation, and testing splits
โข Managing input pipelines
Convolutional Neural Networks with Keras
โข CNN fundamentals and use cases
โข Implementing image classification models
โข Feature extraction and pooling layers
โข Evaluating CNN model results
Model Optimization and Regularization
โข Preventing overfitting and underfitting
โข Dropout and regularization techniques
โข Hyperparameter tuning basics
โข Improving model generalization
Responsible Deep Learning and Practical Deployment
โข Model explainability and trust
โข Bias, fairness, and ethical considerations
โข Deployment readiness concepts
โข Best practices for real-world Keras models
Assessment Topics
โข Keras fundamentals
โข Neural network concepts
โข Model training and evaluation
โข CNN and RNN basics
โข Data preprocessing workflows
โข Image and speech AI applications
โข Keras tools and libraries
โข Model optimization techniques
โข Performance evaluation concepts
โข Practical Keras scenarios
Evaluation
โข Hands-on Keras model building exercises
โข Model training and evaluation assessment
โข CNN implementation activity
โข Final knowledge evaluation quiz
Course Materials
Participants will receive course materials, slides, reference materials, exercises and access to resources for further learning.
Certification
Participants who successfully complete the training will receive an AcadNXT Certification in Deep Learning with Keras Training, validating their expertise in building, training, and applying deep learning models using Keras for practical AI applications.
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What Our Students Say
This course made deep learning with Keras simple and practical to understand.
The step-by-step Keras workflows were extremely helpful.
A concise and effective introduction to building deep learning models with Keras
The CNN and optimization modules were very well explained.
An excellent fast-track course for practical deep learning using Keras.