Course Content
Intro on AI/ML & AWS sign up
Amazon SageMaker is a fully managed machine learning service provided by Amazon Web Services (AWS). It is designed to help data scientists and developers build, train, and deploy machine learning models at scale. With SageMaker, you can easily create, train, and deploy machine learning models without the need to manage the underlying infrastructure.
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Popular Amazon models
Amazon Web Services (AWS) provides a rich set of services and tools for implementing artificial intelligence (AI) and machine learning (ML) solutions.
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IAM & access mgmt
Amazon Identity and Access Management (IAM) is a service provided by Amazon Web Services (AWS) that enables you to manage user access and permissions to AWS resources. IAM allows you to create and manage user accounts, assign fine-grained permissions, and control access to AWS services and resources.
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Amazon S3
Amazon Simple Storage Service (S3) is a highly scalable and durable object storage service provided by Amazon Web Services (AWS). It is designed to store and retrieve any amount of data from anywhere on the web. S3 offers a simple interface to store and retrieve data, making it a popular choice for storing a wide range of data types, including documents, images, videos, backups, logs, and more.
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Introductions to Amazon Sagemaker
Amazon SageMaker is a fully managed machine learning service provided by Amazon Web Services (AWS). It is designed to simplify the process of building, training, and deploying machine learning models at scale. SageMaker provides a comprehensive set of tools and services that enable data scientists and developers to focus on the core tasks of developing and refining models, without the need to manage the underlying infrastructure.
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Prepare data – Generate and label unstructured data
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Build Models – SageMaker Studio notebooks
Amazon SageMaker provides all the tools and libraries you need to build ML models, the process of iteratively trying different algorithms and evaluating their accuracy to find the best one for your use case.
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Train and tune the model – Fully managed infrastructure at scale
Train and tune the model – High-performance distributed training
Train and tune the model – Built-in tools for the highest accuracy and lowest cost
Train and tune the model – Built-in tools for interactivity and monitoring
AWS – SageMaker For Data Scientists
About Lesson
  1. Amazon Translate: Amazon Translate is a neural machine translation service that makes it easy to translate text between different languages. It uses deep learning techniques to provide high-quality translations for various use cases.

  2. Amazon Polly: Amazon Polly is a text-to-speech service that converts text into lifelike speech. It supports multiple languages and voices, allowing you to create applications that generate speech output.

  3. Amazon Lex: Amazon Lex is a service for building conversational interfaces using voice and text. It is the technology behind Amazon Alexa and enables you to build chatbots and virtual assistants that can understand and respond to user queries.

  4. Amazon Transcribe: Amazon Transcribe is an automatic speech recognition (ASR) service that converts speech into written text. It can be used for tasks such as transcription, voice analytics, and closed captioning.

  5. Amazon Personalize: Amazon Personalize is a service that makes it easy to create personalized recommendations for your applications. It uses ML techniques to analyze user behavior and generate recommendations tailored to individual preferences.

  6. Amazon Forecast: Amazon Forecast is a fully managed service for time series forecasting. It uses ML algorithms to analyze historical data and generate accurate forecasts for demand planning, inventory optimization, and resource planning.

  7. Amazon DeepLens: Amazon DeepLens is a deep learning-enabled video camera designed for developers. It provides a platform for developing and deploying computer vision applications using frameworks like TensorFlow and MXNet.

  8. AWS DeepRacer: AWS DeepRacer is a fully autonomous 1/18th scale race car that is used for reinforcement learning experimentation. It allows developers to train and test their reinforcement learning models in a physical racing environment.

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