Learning Options
- Online Video-Based Learning
- Flexible Schedule
- Expert Trainers with Industry Experience
- High Pass Rates
- 24/7 Personalised Support
- Interactive Learning Materials
- Live Online Classes
- Expert Trainers with Industry Experience
- Live Assessment and Feedback
- Interactive Learning Materials
- Networking Opportunities
- High Pass Rates
Overview
The Kubeflow Training Course is designed for professionals seeking to enhance their skills in managing machine learning workflows in cloud environments. As businesses increasingly rely on data-driven decision-making, the ability to deploy and scale machine learning models efficiently is crucial for success. This course provides learners with the tools and techniques to leverage Kubeflow effectively, enabling them to streamline and optimise their machine learning operations with confidence.
This course covers a wide range of Kubeflow aspects, including deployment, scaling, and monitoring machine learning models. Delegates will learn how to build and manage end-to-end machine learning pipelines, integrate various components within the Kubeflow ecosystem, and optimise workflows for both cloud and on-premises environments. By mastering these techniques, professionals will enhance their ability to accelerate machine learning initiatives, improve collaboration between teams, and drive business results.
This 2-Day course by MPES ensures an interactive learning experience, featuring real-world case studies and hands-on exercises. It is ideal for individuals looking to advance their careers by becoming more proficient in Kubeflow and gaining the skills necessary to lead machine learning projects within their organisations.
Course Objectives
- Master Kubeflow principles for efficient machine learning workflows
- Enhance skills in deploying, managing, and scaling models on Kubeflow
- Design and manage end-to-end machine learning pipelines
- Integrate Kubeflow with other tools for enhanced functionality
- Optimise workflows for both cloud and on-premise environments
- Foster collaboration between data scientists, engineers, and business teams
- Monitor and fine-tune machine learning models effectively
IUpon completion, delegates will be equipped with the confidence and skills to manage machine learning workflows using Kubeflow in any environment, enabling them to optimise team collaboration, accelerate model deployment, and contribute to the overall success of their organisation's data-driven initiatives.
Average completion time
2 Monthwith unlimited support
100% onlineStart anytime
Study At Your Own PaceCourse Includes
Course Details
Develop your understanding of essential financial, business and management accounting techniques with ACCA Applied Knowledge. You'll learn basic business and management principles and the skills required of an accountant working in business.
Entry Requirements
Professional Background: No prior experience with Kubeflow is required; however, a basic understanding of cloud computing, Kubernetes, and machine learning will enrich your learning experience.
Technical Proficiency: Learners should have a strong foundation in programming, particularly Python, as well as basic knowledge of machine learning concepts.
Interest in Data Science and ML: This course is ideal for individuals seeking to expand their skills in machine learning operations (MLOps) and improve their understanding of workflow management in cloud-native environments.
Learning Outcomes
Master Kubeflow Pipelines: Gain the ability to build and manage end-to-end machine learning pipelines on Kubernetes using Kubeflow, enhancing your workflow automation and model deployment processes.
Enhance Model Deployment and Management: Learn how to deploy, scale, and monitor machine learning models effectively, enabling you to streamline production-ready model workflows.
Improve Collaboration Across Teams: Develop strategies to foster collaboration between data scientists, machine learning engineers, and DevOps teams, enhancing the productivity of cross-functional teams.
Navigate Cloud-Based ML Environments: Understand how to leverage Kubeflow in cloud-native environments, taking advantage of scalable infrastructure and resources for machine learning projects.
Target Audience
- Data Scientists
- Machine Learning Engineers
- DevOps Engineers
- Cloud Architects
- IT Professionals
- Data Engineers
- AI/ML Research Professionals
- Kubernetes Engineers
- MLOps Specialists
The Kubeflow Training Course is designed for professionals who want to enhance their skills in machine learning operations and work effectively with cloud-native tools for deploying models. Below are the individuals who can benefit from this course:
Course content
Introduction
Architecture
Installing Kubeflow
Introduction to Central Dashboard
Customising Menu Items
Registration Flow
Overview
Container Images
Submit Kubernetes Resources
Troubleshooting
Kubeflow Notebooks API
Introduction
Overview
Concepts Used in Pipelines
Installation
Pipelines SDK
Pipelines SDK (v2)
Troubleshooting
Introduction to Katib
Getting Started with Katib
Running an Experiment
Overview of Trial Templates
Using Early Stopping
Katib Configuration Overview
Environment Variables for Katib Components
Introduction to Multi-User Isolation
Design for Multi-User Isolation
Getting Started with Multi-User Isolation
Elyra
Istio
Kale
KServe
Migration
Models UI
Run Your First InferenceService
Fairing
Overview of Kubeflow Fairing
Install Kubeflow Fairing
Configure Kubeflow Fairing
Fairing on Azure and GCP
Feature Store
Introduction to Feast
Getting Started with Feast
Tools for Serving
Seldon Core Serving
BentoML
MLRun Serving Pipelines
NVIDIA Triton Inference Server
TensorFlow Serving
TensorFlow Batch Prediction
Kubeflow on AWS
Arrikto Enterprise Kubeflow
Arrikto Kubeflow as a Service
Charmed Kubeflow
Deployment
Authentication Using OIDC in Azure
Azure Machine Learning Components
Access Control for Azure Deployment
Configure Azure MySQL Database to Store Metadata
Troubleshooting Deployments on Azure AKS
Deployment
Pipelines on Google Cloud
Customise Kubeflow on GKE
Using Your Own Domain
Authenticating Kubeflow to Google Cloud
Securing Your Clusters
Troubleshooting Deployments on GKE
Kubeflow On-Premises on Anthos
Create or Access an IBM Cloud Kubernetes Cluster
Create or Access an IBM Cloud Kubernetes Cluster on a VPC
Kubeflow Deployment on IBM Cloud
Pipelines on IBM Cloud Kubernetes Service (IKS)
Using IBM Cloud Container Registry (ICR)
End-to-End Kubeflow on IBM Cloud
Install Kubeflow on Nutanix Karbon
Integrate with Nutanix Storage
Uninstall Kubeflow
Introduction to Kubeflow Operator
Installing Kubeflow Operator
Installing Kubeflow
Uninstalling Kubeflow
Uninstalling Kubeflow Operator
Troubleshooting
Install Kubeflow on OpenShift
Uninstall Kubeflow
Module 1: Getting Started
Module 2: Central Dashboard
Module 3: Kubeflow Notebooks
Module 4: Kubeflow Pipelines
Module 5: Katib
Module 6: Multi-Tenancy
Module 7: External Add-Ons
Module 8: Kubeflow Distributions
Module 9: Kubeflow on Azure
Module 10: Kubeflow on Google Cloud
Module 11: Kubeflow on IBM Cloud
Module 12: Kubeflow on Nutanix Karbon
Module 13: Kubeflow Operator
Module 14: Kubeflow on OpenShift
MPES Support That Helps You Succeed
At MPES, we offer comprehensive support to help you succeed in your studies. With expert guidance and valuable resources, we help you stay on track throughout your course.
- MPES Learning offers dedicated support to help you succeed in Accounting and Finance courses.
- Get expert guidance from tutors available online to assist with your studies.
- Check your eligibility for exemptions with the relevant professional body before starting.
- Our supportive team is here to offer study advice and support throughout your course.
- Access a range of materials to help enhance your learning experience. These resources include practice exercises and additional reading to support your progress.
Career Growth Stories
MPES Learning offers globally recognised courses in accounting,
Arvy Pasanting
As a qualified accountant, studying with MPES has been very rewarding experience. Its team of passionate and dedicated mentors gave me the confidence and knowledge I needed to not just at excel in my current role as an auditor, but also inspired me to expand my horizons. I am very grateful of the support I was given where the skills I gained extended beyond just passing exams and learning about accounting principles - it allowed me to take on roles that benefit the wider community.
Arvy PasantingDavid Ford
I was recommended MPES after searching for a way to pursue a career in the accounting profession, I have studied with them throughout my journey utilising both their “in class” and online learning opportunities that fit around the needs of my employer, I have found them to be consummate professionals delivering first class accounting courses with support always available.
David FordAaron Allcote
As a finance officer, MPES has been a huge help in understanding the process of recording and processing transactions from all different perspectives. The courses are very easy to follow, and the training they provide can be applied to real-life scenarios. The courses have been a huge help for me, and I would highly recommend them.
Aaron AllcoteBob Beaumont
I completed all of my ACA studies with MPES and I think you would struggle to find a better training provider anywhere in the British Isles. MPES' tutors are excellent both at delivering training and giving individualised feedback and coaching. the supporting materials and the out of class support are also great.
Bob BeaumontGeorge Evans
The Financial Risk Management Course at MPES was invaluable in deepening my understanding of risk assessment and mitigation strategies. The hands-on learning approach allowed me to apply new concepts directly to my work. I highly recommend it for professionals in finance.
George EvansJames Robinson
As a financial consultant, I am always seeking ways to enhance my expertise. The Investment Analysis Course at MPES exceeded my expectations, offering practical skills and knowledge that I can apply immediately in my consulting work. It's an outstanding choice for professionals in finance.
James RobinsonLaura Bennett
The Corporate Finance Course I attended at MPES was transformative. The depth of knowledge shared by the instructors and the relevance of the topics covered have directly impacted on our financial strategy. I strongly endorse this program for anyone in a leadership position in finance.
Laura BennettEmma Johnson
The Financial Modeling and Valuation Course at MPES was incredibly insightful. The practical applications and real-world examples helped solidify my understanding of complex concepts. I highly recommend this course to anyone looking to enhance their financial acumen.
Emma JohnsonNeed help with your ACCA course?
Our course advisors are here to help guide you and ensure that you choose the right course for you and your career journey.
Have Questions? We’ve Got You
If you have any questions, we’re here to help. Find the answers you need in the MPES detailed FAQ section.
Q. What is the primary objective of the Kubeflow Training course?
The primary objective of this course is to equip delegates with the skills to deploy, manage, and optimise machine learning workflows using Kubeflow. The course ensures learner gain hands-on experience with scalable ML solutions on Kubernetes.
Q. Who should attend this course?
This course is ideal for data scientists, ML engineers, DevOps professionals, and IT administrators who want to streamline machine learning workflows and integrate them with Kubernetes environments.
Q. What will I learn during this course?
Delegates will learn how to set up and configure Kubeflow, create ML pipelines, manage models in production, and utilise tools for monitoring and scaling workflows efficiently.
Q. How does this course benefit an organisation?
Organisations benefit by enabling their teams to implement robust machine learning workflows, improve model deployment speed, and optimise resource usage, leading to faster insights and better ROI on AI projects.
Q. How will this course help with career growth?
This training enhances career prospects by equipping professionals with in-demand skills in machine learning operations (MLOps), Kubeflow, and Kubernetes, positioning them as valuable assets in AI-driven industries.
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