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Experience the possibilities of MLOps through proven open culture and practices used by Red Hat to support customer innovation.

  • MLOps Practices with Red Hat OpenShift AI (AI500) is a five-day immersive class, offering attendees an opportunity to experience and implement a successful MLOps adoption journey. While many AI or data science training programs focus on a particular framework or technology, this course covers how the best Open Source tools fit together in a full MLOps workflow. It blends continuous discovery, continuous training, and continuous delivery in a highly engaging experience simulating real-world machine learning scenarios.
  • To achieve the learning objectives, participants should include multiple roles from across the organization. Data scientists, machine learning engineers, platform engineers, architects, and product owners will gain experience working beyond their traditional silos. The daily routine simulates a real-world delivery team, where cross-functional teams learn how collaboration breeds innovation. Armed with shared experiences and best practices, the team can apply what it has learned to help the organization's culture and mission succeed in the pursuit of new projects and improved processes.
  • This course is based on Red Hat OpenShift AI, Red Hat OpenShift GitOps and Predictive AI
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What You'll Learn

Impact on the Organization

  • Many companies are discovering that their current organizational structure and approaches to machine learning are not equipped to deliver AI-driven transformation outcomes: faster deployment of models, continuous improvement through feedback loops, and solutions that align with user needs. To achieve these goals, companies must adopt and practice MLOps principles and methods, integrating collaboration, automation, and lifecycle management into their AI workflows.
  • This course introduces real-world MLOps culture principles and modern practices. You will develop a predictive machine learning model using Red Hat OpenShift and Red Hat OpenShift AI, and other industry-standard MLOps software, tools, and techniques. By the end of the course, you will be equipped to apply MLOps principles and leverage open-source solutions to drive and lead AI transformation initiatives within your organization.

Impact on the Individual

As a result of attending this course, you will experience MLOps culture, explore MLOps practices, and apply your learning to bring a machine learning model into production. After completing the course, you will be able to:

  • Apply MLOps principles to streamline the development and deployment of machine learning models.
  • Gain hands-on experience with modern tools and processes, covering the entire lifecycle from inner loop development to outer loop operations.
  • Enhance your skills in collaborative coding styles with pair and mob programming style.

Who Should Attend

This experience demonstrates how individuals across different roles must learn to share, collaborate, and work toward a common goal to achieve positive outcomes and drive innovation.

It is especially valuable for:

  • MLOps Platform Users: Data scientists, data engineers, and application developers.
  • MLOps Platform Providers: Machine learning engineers, MLOps engineers, and platform engineers.
  • MLOps Platform Stakeholders: Architects and IT managers.

The scenario incorporates technical aspects of working with machine learning systems, offering practical insights into how these roles can align their efforts.

You will learn how to continuously deliver value to your customers by accelerating the deployment of new models to market. Our instructors will share experiences and best practices learned from engaging directly with customers during Red Hat services engagements.

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Prerequisites

  • Containers, Kubernetes and Red Hat OpenShift Technical Overview (DO080) or Basic understanding of OpenShift/Kubernetes and containers is helpful
  • High level understanding of AI or Red Hat AI Foundations is beneficial

Learning Journey

Coming Soon...

Module 1: What is MLOps?

Brainstorm and explore what principles, practices, and cultural elements make up a MLOps model for ML model developments and deployments.

Module 2: Inner Loop

Familiarize ourselves with the necessary tools for experimenting and building our model; we will create a workbench, explore the dataset, start tracking our experiments, and deploy our models.

Module 3: Training Pipelines

Transition to automating the previous steps for productionizing our model training.

Module 4: Outer Loop

Introduction to MLOps: a set of practices that automate and simplify machine learning workflows and deployments.

Here we will create our MLOps environment where the continuous training pipeline, automated deployment, and the supporting toolings will be running.

Module 5: Monitoring

Machine learning models can be influenced by various factors, including changes in data patterns, shifts in user behavior, and evolving external conditions. By implementing continuous monitoring, we will proactively identify these changes, assess their impact on model accuracy, and make necessary adjustments to maintain optimal performance.

Module 6: Data Versioning

Enhance traceability by introducing versioning for our datasets as they change over time.

Module 7: Advanced Deployments

Properly handle pre- and post-processing for data and predictions, explore autoscaling to handle loads, and introduce advanced deployment patterns like canary and blue-green deployments to ensure safe and seamless model rollouts.

Module 8: Feature Stores

Robust ways of dealing with data features and their changes, as well as making sure features are homogeneous between training and serving.

Module 9: Security

Implement automated security guardrails to stay compliant with the organizations security practices and extend them to the models.

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Frequently Asked Questions (FAQs)

  • Why get Red Hat certified?

    Red Hat certifications are highly respected in the IT industry and validate your expertise in open source technologies, particularly Red Hat Enterprise Linux (RHEL) and Red Hat OpenShift.

    These certifications demonstrate your ability to design, deploy, and manage complex enterprise environments using Red Hat solutions, increasing your value to employers and opening doors to a wide range of career opportunities.

  • What to expect for the examination?

    Red Hat certification exams are performance-based, meaning you'll be evaluated on your ability to perform real-world tasks in a live environment.

    This ensures that you not only understand the theoretical concepts but also have the practical skills to apply them.

    Note: Certification requirements and policies may be updated by Red Hat from time to time. We apologize for any discrepancies; do get in touch with us if you have any questions.

  • How long is Red Hat certification valid for?

    Red Hat certifications are current for three years.

    According to Red Hat, these certifications do not “expire”, or become “terminated” or “invalid”, but they can become “non-current”.

    There are different ways to keep a certification current, depending on the type of certification. You always have the option of retaking an exam to renew its associated certification.

    In some instances, you can earn other certifications to keep your certification current. This approach allows IT professionals to expand their skills and knowledge into new areas, which is increasingly important for a successful IT career.

    Note: Certification requirements and policies may be updated by Red Hat from time to time. We apologize for any discrepancies; do get in touch with us if you have any questions.

  • Why take this course with Trainocate?

    Here’s what sets us apart:

    - Global Reach, Localized Accessibility: Benefit from our geographically diverse training hubs in 24 countries (and counting!).

    - Top-Rated Instructors: Our team of subject matter experts (with high average CSAT and MTM scores) are passionate to help you accelerate your digital transformation.

    - Customized Training Solutions: Choose from on-site, virtual classrooms, or self-paced learning to fit your organization and individual needs.

    - Experiential Learning: Dive into interactive training with our curated lesson plans. Participate in hands-on labs, solve real-world challenges, and take on comprehensive assessments.

    - Learn From The Best: With 30+ authorized training partnerships and countless awards from Microsoft, AWS, Google – you're guaranteed learning from the industry's elite.

    - Your Bridge To Success: We provide up-to-date course materials, helpful exam guides, and dedicated support to validate your expertise and elevate your career.

Keep Exploring

Course Curriculum

Course Curriculum

Training Schedule

Training Schedule

Exam & Certification

Exam & Certification

FAQs

Frequently Asked Questions

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