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    AWS SageMaker Complete Course| PyTorch & Tensorflow in NLP

    Posted By: Sigha
    AWS SageMaker Complete Course| PyTorch & Tensorflow in NLP

    AWS SageMaker Complete Course| PyTorch & Tensorflow in NLP
    Video: .mp4 (1280x720, 30 fps(r)) | Audio: aac, 48000 Hz, 2ch | Size: 2.24 GB
    Genre: eLearning Video | Duration: 41 lectures (5 hour, 28 mins) | Language: English

    Build deep learning model in Tensorflow/Keras & PyTorch. How to bring docker container&Algorithm from local to Sagemaker

    What you'll learn

    What is SageMaker and Why it is required
    SageMaker Architechure
    Model Building using existing Docker Image in SageMaker
    Model Building using existing algorithm in SageMaker
    Model Building using SageMaker Pre-built algorithms
    Model Building in Tensorflow/Keras
    Model Building in Pytorch
    How to deploy the models in SageMaker
    How to make predictions from Endpoints
    Create complete End-to End machine learning Pipeline Workflow
    Real time example of NLP
    How to schedule the SageMaker notebook for Retraining
    How to Build ,deploy and schedule the Model

    Requirements

    Free or paid subscription to AWS is required. It may ask for Phone and/or Credit Card for verification
    Python Basic knowledge

    Description

    This course is complete guide of AWS SageMaker wherein student will learn how to build, deploy SageMaker models by brining on-premises docker container and integrate it to SageMaker. Course will also do deep drive on how to bring your own algorithms in AWS SageMaker Environment. Course will also explain how to use pre-built optimized SageMaker Algorithm.

    Course will also do deep drive how to create pipeline and workflow so model could be retrained and scheduled automatically.

    This course will give you fair ideas of how to build Transformer framework in Keras for multi class classification use cases. Another way of solving multi class classification by using pre-trained model like Bert .

    Both the Deep learning model later encapsulated in Docker in local machine and then later push back to AWS ECR repository.

    This course offers:

    What is SageMaker and why it is required

    SageMaker Machine Learning lifecycle

    SageMaker Architecture

    SageMaker training techniques:

    Bring your own docker container from on premise to SageMaker

    Bring your own algorithms from local machine to SageMaker

    SageMaker Pre built Algorithm

    SageMaker Pipeline development

    Schedule the SageMaker Training notebook

    More than 5 hour course are provided which helps beginners to excel in SageMaker and will be well versed with build, train and deploy the models in SageMaker


    Who this course is for:

    Data Engineers or data scientist
    Developers who want to start a career in or wants to learn about the exciting domain of Data Science and Machine Learning
    Business Analysts who want to apply Data Science to solve business problems
    Learn how to build train and deploy it in AWS cloud

    AWS SageMaker Complete Course| PyTorch & Tensorflow in NLP


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