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DP-100T01 Designing and Implementing a Data Science Solution on Azure

4.6 out of 5 rating Last updated 21/07/2024   English

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Global Schedule

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30 Sep 24 Enquire Book
14:00 - 22:00 Live Online GTR 2,268
06 Jan 25 Enquire Book
14:00 - 22:00 Live Online GTR 2,268
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Flexible Various 165

Find out more about this course

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Duration

4 Days

24 CPD hours

Overview

Learn how to operate machine learning solutions at cloud scale using Azure Machine Learning. This course teaches you to leverage your existing knowledge of Python and machine learning to manage data ingestion and preparation, model training and deployment, and machine learning solution monitoring in Microsoft Azure.

Description

Learn how to operate machine learning solutions at cloud scale using Azure Machine Learning. This course teaches you to leverage your existing knowledge of Python and machine learning to manage data ingestion and preparation, model training and deployment, and machine learning solution monitoring with Azure Machine Learning and MLflow.

Prerequisites

  • Creating cloud resources in Microsoft Azure.
  • Using Python to explore and visualize data.
  • Training and validating machine learning models using common frameworks like Scikit-Learn, PyTorch, and TensorFlow.
  • Working with containers
  • AI-900T00: Microsoft Azure AI Fundamentals is recommended, or the equivalent experience.
  • 1 - Design a data ingestion strategy for machine learning projects
    • Identify your data source and format
    • Choose how to serve data to machine learning workflows
    • Design a data ingestion solution
    2 - Design a machine learning model training solution
    • Identify machine learning tasks
    • Choose a service to train a machine learning model
    • Decide between compute options
    3 - Design a model deployment solution
    • Understand how model will be consumed
    • Decide on real-time or batch deployment
    4 - Design a machine learning operations solution
    • Explore an MLOps architecture
    • Design for monitoring
    • Design for retraining
    5 - Explore Azure Machine Learning workspace resources and assets
    • Create an Azure Machine Learning workspace
    • Identify Azure Machine Learning resources
    • Identify Azure Machine Learning assets
    • Train models in the workspace
    6 - Explore developer tools for workspace interaction
    • Explore the studio
    • Explore the Python SDK
    • Explore the CLI
    7 - Make data available in Azure Machine Learning
    • Understand URIs
    • Create a datastore
    • Create a data asset
    8 - Work with compute targets in Azure Machine Learning
    • Choose the appropriate compute target
    • Create and use a compute instance
    • Create and use a compute cluster
    9 - Work with environments in Azure Machine Learning
    • Understand environments
    • Explore and use curated environments
    • Create and use custom environments
    10 - Find the best classification model with Automated Machine Learning
    • Preprocess data and configure featurization
    • Run an Automated Machine Learning experiment
    • Evaluate and compare models
    11 - Track model training in Jupyter notebooks with MLflow
    • Configure MLflow for model tracking in notebooks
    • Train and track models in notebooks
    12 - Run a training script as a command job in Azure Machine Learning
    • Convert a notebook to a script
    • Run a script as a command job
    • Use parameters in a command job
    13 - Track model training with MLflow in jobs
    • Track metrics with MLflow
    • View metrics and evaluate models
    14 - Perform hyperparameter tuning with Azure Machine Learning
    • Define a search space
    • Configure a sampling method
    • Configure early termination
    • Use a sweep job for hyperparameter tuning
    15 - Run pipelines in Azure Machine Learning
    • Create components
    • Create a pipeline
    • Run a pipeline job
    16 - Register an MLflow model in Azure Machine Learning
    • Log models with MLflow
    • Understand the MLflow model format
    • Register an MLflow model
    17 - Create and explore the Responsible AI dashboard for a model in Azure Machine Learning
    • Understand Responsible AI
    • Create the Responsible AI dashboard
    • Evaluate the Responsible AI dashboard
    18 - Deploy a model to a managed online endpoint
    • Explore managed online endpoints
    • Deploy your MLflow model to a managed online endpoint
    • Deploy a model to a managed online endpoint
    • Test managed online endpoints
    19 - Deploy a model to a batch endpoint
    • Understand and create batch endpoints
    • Deploy your MLflow model to a batch endpoint
    • Deploy a custom model to a batch endpoint
    • Invoke and troubleshoot batch endpoints
    Additional course details:

    Nexus Humans DP-100T01 Designing and Implementing a Data Science Solution on Azure training program is a workshop that presents an invigorating mix of sessions, lessons, and masterclasses meticulously crafted to propel your learning expedition forward.

    This immersive bootcamp-style experience boasts interactive lectures, hands-on labs, and collaborative hackathons, all strategically designed to fortify fundamental concepts.

    Guided by seasoned coaches, each session offers priceless insights and practical skills crucial for honing your expertise. Whether you're stepping into the realm of professional skills or a seasoned professional, this comprehensive course ensures you're equipped with the knowledge and prowess necessary for success.

    While we feel this is the best course for the DP-100T01 Designing and Implementing a Data Science Solution on Azure course and one of our Top 10 we encourage you to read the course outline to make sure it is the right content for you.

    Additionally, private sessions, closed classes or dedicated events are available both live online and at our training centres in Dublin and London, as well as at your offices anywhere in the UK, Ireland or across EMEA.

    FAQ for the DP-100T01 Designing and Implementing a Data Science Solution on Azure Course

    Available Delivery Options for the DP-100T01 Designing and Implementing a Data Science Solution on Azure training.
    • Live Instructor Led Classroom Online (Live Online)
    • Traditional Instructor Led Classroom (TILT/ILT)
    • Delivery at your offices in London or anywhere in the UK
    • Private dedicated course as works for your staff.
    How many CPD hours does the DP-100T01 Designing and Implementing a Data Science Solution on Azure training provide?

    The 4 day. DP-100T01 Designing and Implementing a Data Science Solution on Azure training course give you up to 24 CPD hours/structured learning hours. If you need a letter or certificate in a particular format for your association, organisation or professional body please just ask.

    Is the DP-100T01 Designing and Implementing a Data Science Solution on Azure training appropriate for someone learning to use Azure in a professional environment?

    Yes the DP-100T01 Designing and Implementing a Data Science Solution on Azure is appropriate for someone looking to use Azure in a professional workspace or environment. But do make sure to note any prerequisites, read the course outline to ensure it is the right fit for you or your teams requirements and preferences.

    What is the correct audience for the DP-100T01 Designing and Implementing a Data Science Solution on Azure training?

    This course is designed for data scientists with existing knowledge of Python and machine learning frameworks like Scikit-Learn, PyTorch, and Tensorflow, who want to build and operate machine learning solutions in the cloud.

    Do you provide training for the DP-100T01 Designing and Implementing a Data Science Solution on Azure.

    Yes we provide corporate training, dedicated training and closed classes for the DP-100T01 Designing and Implementing a Data Science Solution on Azure. This can take place anywhere in UK including, England, Scotland, Cymru (Wales) or Northern Ireland or live online allowing you to have your teams from across UK or further afield to attend a single training event saving travel and delivery expenses.

    What is the duration of the DP-100T01 Designing and Implementing a Data Science Solution on Azure program.

    The DP-100T01 Designing and Implementing a Data Science Solution on Azure training takes place over 4 day(s), with each day lasting approximately 8 hours including small and lunch breaks to ensure that the delegates get the most out of the day.

    Why are Nexus Human the best provider for the DP-100T01 Designing and Implementing a Data Science Solution on Azure?
    Nexus Human are recognised as one of the best training companies as they and their trainers have won and hold many awards and titles including having previously won the Small Firms Best Trainer award, national training partner of the year for UK on multiple occasions, having trainers in the global top 30 instructor awards in 2012, 2019 and 2021. Nexus Human has also been nominated for the Tech Excellence awards multiple times. Learning Performance institute (LPI) external training provider sponsor 2024.
    Is there a discount code for the DP-100T01 Designing and Implementing a Data Science Solution on Azure training.

    Yes, the discount code PENPAL5 is currently available for the DP-100T01 Designing and Implementing a Data Science Solution on Azure training. Other discount codes may also be available but only one discount code or special offer can be used for each booking. This discount code is available for companies and individuals.

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    Training Insurance Included!

    When you organise training, we understand that there is a risk that some people may fall ill, become unavailable. To mitigate the risk we include training insurance for each delegate enrolled on our public schedule, they are welcome to sit on the same Public class within 6 months at no charge, if the case arises.

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