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Amazon SageMaker Studio for Data Scientists Training in Netherlands

Build, train, and deploy models with Amazon SageMaker Studio

Gain real-world experience in data processing, training, and deployment

Receive guidance from top industry professionals

Master everything from data wrangling to model optimization

Gain in-demand skills for high-level data science roles

Flexible and intensive Training

Convenient and hassle-free payment plans

GoogleGoogle4.78/5
6987 EnrolledEnrolled Learners
GoogleGoogle4.78/5
6987 EnrolledEnrolled Learners

Overview

What you will learn:

  • Master end-to-end ML model development with Amazon SageMaker Studio
  • Utilize SageMaker Data Wrangler and AWS Glue for efficient data processing
  • Enhance model training and tuning with SageMaker Experiments
  • Harness the power of automated ML with SageMaker Autopilot and ensure fairness with bias detection
  • Seamlessly deploy models using SageMaker Pipelines and manage versions with Model Registry
  • Optimize model performance with hands-on experience using SageMaker Debugger

Upcoming sessions

Curriculum

1

JupyterLab Extensions in SageMaker Studio

2

Demonstration: SageMaker user interface demo

1

Using SageMaker Data Wrangler for data processing

2

Hands-On Lab: Analyze and prepare data using Amazon SageMaker Data Wrangler

3

Using Amazon EMR

4

Hands-On Lab: Analyze and prepare data at scale using Amazon EMR

5

Using AWS Glue interactive sessions

6

Using SageMaker Processing with custom scripts

7

Hands-On Lab: Data processing using Amazon SageMaker Processing and SageMaker

8

Python SDK

9

SageMaker Feature Store

10

Hands-On Lab: Feature engineering using SageMaker Feature Store

1

SageMaker training jobs

2

Built-in algorithms

3

Bring your own script

4

Bring your own container

5

SageMaker Experiments

6

Hands-On Lab: Using SageMaker Experiments to Track Iterations of Training and Tuning

7

SageMaker Debugger

8

Hands-On Lab: Analyzing, Detecting, and Setting Alerts Using SageMaker Debugger

9

Automatic model tuning

10

SageMaker Autopilot: Automated ML

11

Demonstration: SageMaker Autopilot

12

Bias detection

13

Hands-On Lab: Using SageMaker Clarify for Bias and Explainability

14

SageMaker Jumpstart

1

SageMaker Model Registry

2

SageMaker Pipelines

3

Hands-On Lab: Using SageMaker Pipelines and SageMaker Model Registry with SageMaker

4

Studio

5

SageMaker model inference options

6

Scaling

7

Testing strategies, performance, and optimization

8

Hands-On Lab: Inferencing with SageMaker Studio

1

Amazon SageMaker Model Monitor

2

Discussion: Case study

3

Demonstration: Model Monitoring

1

Accrued cost and shutting down

2

Updates

1

Environment setup

2

Challenge 1: Analyze and prepare the dataset with SageMaker Data Wrangler

3

Challenge 2: Create feature groups in SageMaker Feature Store

4

Challenge 3: Perform and manage model training and tuning using SageMaker Experiments

5

(Optional) Challenge 4: Use SageMaker Debugger for training performance and model

6

optimization

7

Challenge 5: Evaluate the model for bias using SageMaker Clarify

8

Challenge 6: Perform batch predictions using model endpoint

9

(Optional) Challenge 7: Automate full model development process using SageMaker Pipeline

Meet your Trainer

Our Trainers

Learners Point has a reputation for high-quality training that makes a difference in people's lives. We undertake a practical and innovative approach to working closely with businesses to improve their workforce. Our expertise is wide-ranging with ample support from our expert trainers who are globally recognized and hold a diverse set of experiences in their field of expertise. We are proud of our instructors who take ownership of our distinctive and comprehensive training methodologies, help our students imbibe those with ease, and accomplish gracefully.

We at Learners Point believe in encouraging our students to embark upon a journey of lifelong learning and self-development, with the aid of our comprehensive and distinctive courses tailored to current market trends. The manifestation of our career-oriented approach is what we assure through a pleasant professional enriched environment with cutting-edge technology, and an outstanding while highly acknowledged training staff that uses up-to-date methodologies and quality course material. With our aim to mold professionals to be future leaders, our industry expert trainers provide the best in town mentorship to our students while endowing them with the thirst for knowledge and inspiring them to strive for professional and human excellence.

Our Trainers

Learning Outcomes

Upon finishing the training, you will:

  • 1

    Master data processing with SageMaker Data Wrangler and AWS Glue for streamlined ML workflows

  • 2

    Enhance model performance with real-time insights and alerts using SageMaker Debugger

  • 3

    Automate and streamline ML workflows using SageMaker Autopilot and SageMaker Pipelines

  • 4

    Gain expertise in model deployment and version control with SageMaker Model Registry

  • 5

    Detect and address bias in models using SageMaker Clarify to ensure fairness and transparency

  • objective-image

    Ready to get started?

  • Learners Point Certificate

    Earn a Course Completion Certificate, an official Learners Point credential that confirms that you have successfully completed a course with us.

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    Overall ratings by our students

    Related courses

    Frequently asked questions

    Our advanced and practical Amazon SageMaker Studio for Data Scientists Training assists professional data scientists in becoming proficient with the tools and methods for creating, honing, and implementing machine learning models using Amazon SageMaker Studio. This course covers data wrangling, model optimization, automated machine learning, deployment methodologies, and real-time monitoring.

    Completing this certification opens numerous career opportunities, including roles like Data Scientist, Machine Learning Engineer, AI Specialist, and ML Architect. Companies across tech, finance, and healthcare industries value this certification, as it proves your capability to handle end-to-end machine learning workflows.

    Professionals of the program can pursue careers like:

    • Data Scientists for technology, finance, health, and other sectors
    • Machine Learning Engineers within cloud-oriented businesses
    • AI Experts dealing with emerging technologies
    • ML Architects, designing machine learning pipelines and solutions for big organizations

    The training course provides convenient learning options to accommodate working professionals. The course has live sessions, on-demand learning materials, and review courses, so you can learn at your convenience. You can manage work and training simultaneously by choosing schedules that integrate into your professional routine.

    Yes, we offer the course online, giving the advantage of learning from anywhere. The online version comprises live sessions, recorded lectures, and interactive modules, giving you a holistic learning experience. This provides you with the facility to pursue the certification while keeping your professional responsibilities intact.

    Our course gives you hands-on experience with Amazon SageMaker Studio, and you can enhance your machine learning capabilities, streamline workflows, and automate. With these skills in demand, you can handle more advanced projects, which results in career advancement and possible leadership roles within your existing profession.

    Do you want to learn more about Learners Point Academy?

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    Let's chat!

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