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AIOps 基金会℠

港币 9,900.00

认证 AIOps 基金会℠ 
持续时间:2天
Language: English/ Cantonese/Putonghua
远程现场讲师指导的交互式认证培训

其他信息

工作家庭

AI, DevOps SRE

角色

AIOps Architects, AIOps Engineers, Business Manager, Cloud Engineers, Data Engineers, Data Scientists, DevOps engineers, DevOps Practitioners, IT Directors, IT Managers, IT Operation, IT Security Analysts, Product Owners, Scrum Masters, Site Reliability Engineers, Software Engineers, System Integrators

能力水平

基础

工作坊类别

AI

工作坊描述

This course introduces the history, background, technologies, organizational challenges and strategies towards applying artificial intelligence for IT Operations, or AIOps, a rapidly growing industry driven by the rapidly evolving IT operational environments of cloud native applications. It is tailored for those focused on understanding basic concepts, implementations, use cases, and benefits.
 
This AIOps FoundationSM course covers the origins of AIOps, including the history behind the
term, patterns that preceded it, and the technological context in which it has evolved. Learners
will gain an understanding of the processes of combining Big Data analytics, Machine Learning
algorithms, Generative AI, automation, and optimization into a single platform.
This course introduces key principles and foundational concepts, along with the core
technologies of AIOps: Big Data and Machine Learning. The course provides learners with an
understanding of how and why digital transformation, together with the evolution of Machine
Learning and Generative AI, have brought about the rise of AIOps as an indispensable tool in
today’s IT Operational landscape.

Core technologies of Big Data, Machine Learning and Generative AI are discussed, as well as the
basic concepts of artificial intelligence, different types of Machine Learning models that can be
implemented, the relationship between AIOps and MLOps, as well as DevOps and Site Reliability.


This foundation course provides the learner with a solid understanding of the benefits of
implementing AIOps in the organization, including common challenges and key steps in ensuring
valuable and successful integration of artificial intelligence in the day-to-day operations of
information technology solutions.


Practical, real-world exercises are used to apply the concepts covered in the course and sample
documents, templates, tools, and techniques will be provided to use after the class.
This course positions learners to successfully complete the AIOps FoundationSM certification
exam.

Why Choose AIOps?

Stay Ahead of Evolving Technologies
The AIOps Foundation certification will equip you with the necessary knowledge to navigate the complexities of cloud-native applications and harness artificial intelligence for IT Operations.

Master Cutting-edge Technologies
Gain an in-depth understanding of how artificial intelligence, big data analytics and machine learning can be combined to optimise IT processes.

Drive Digital Transformation Efforts
Explore the synergy between digital transformation, machine learning, and the rise of AIOps to spearhead initiatives that seamlessly integrate AIOps into organisational workflows.

Overcome Common Challenges, Maximise Benefits
Acquire the tools and practical strategies needed to overcome common hurdles and maximise the benefits of AIOps adoption. Gain a greater understanding of deployment effectiveness and learn to quantify outcomes using industry-standard metrics.

观众

  • 任何专注于 IT 运营的人​
  • 任何对当今 IT 领域的软件感兴趣的人
  • AIOps 架构师和工程师​
  • 业务经理、利益相关者​
  • 云工程师​
  • 数据工程师和科学家
  • DevOps 工程师和从业者
  • 信息技术总监
  • IT 经理​
  • IT 安全分析师
  • IT 团队领导​
  • 产品负责人​
  • Scrum 大师​
  • 软件工程师​
  • 站点可靠性工程师
  • 系统集成商​
  • AIOps平台和工具提供商

Course objectives

The learning objectives for the AIOps FoundationSM course include a practical understanding
of:
•       the basic concepts, industry contexts, and key principles of AIOps
•       the concepts and principles of core technologies required for AIOps implementation
•       the changes in organizational mindset and required skill sets for deploying AIOps
•       how to evaluate the performance of an AIOps implementation using industry standard metrics
•       the challenges and opportunities that arise when looking to deploy AIOps in the organization
•       key considerations and strategies required to succeed in promoting and delivering AIOps in your organization.

What will you learn?

AIOps Fundamentals
Discover how AIOps has evolved through the years, the difference between AIOps and IT Operations Analytics, and the current stages of an AIOps system.

AIOps in the Organization
Learn how AIOps can be integrated into organizational frameworks, and its impact on DevOps, site reliability, security, and system complexity.

Core Technologies: Big Data
Gain an introduction to Big Data, covering what Big Data is, the Five V’s, its key characteristics, AIOps data sources/types, and diverse data.

Core Technologies: Machine Learning (ML)
Explore AI and Machine Learning in AIOps, supervised vs. unsupervised learning, ML vs. analytics, training models, and future prospects.

AIOps and Operations Metrics
Leverage industry standard metrics to quantify the outcomes of implementing AIOps.

AIOps Use Cases and Organizational Mindset
Understand the challenges and opportunities of applying AIOps in the organization.

Evaluating AIOps Impact
Measure the effectiveness of AIOps deployment and its potential benefits.

Implementing AIOps
Discover the challenges, trends and ethical considerations organizations may face while deploying an AIOps initiative.

Course outline

Introduction

模块 1:AIOps 基础
•       History and predecessors
•       Core technologies and basic concepts
•       AIOps capability chain

Module 2: AIOps in the organization
•       Drivers and influences
•       AIOps and DevOps
•       AIOps and Site Reliability Engineering
•       AIOps and security

Module 3: Core technologies: Data
•       What is Big Data?
•       Five Vs of Big Data
•       AIOps data sources and types
•       From source to AIOps

Module 4: Core Technologies: Machine Learning (ML) and Generative AI (GenAI)
•       AI, ML, and GenAI
•       How ML models learn
•       Supervised versus unsupervised
•       Analytics versus AI
•       AIOps and the future of AI

Module 5: AIOPs and operations metrics
•       Metrics and operations
•       Key metrics to track across systems
•       Agreements, objectives and indicators

Module 6: AIOps use cases and organizational mindset
•       Shifting from reactive to proactive
•       Deterministic to probabilistic
•       Deep dive into use cases

Module 7: Evaluating AIOps’ impact
•       AIOps and operations metrics
•       AIOps, DevOps, and SRE
•       Improving AI accuracy
•       AIOps system visibility

Module 8: Implementing AIOps in the organization
•       Avoiding common challenges
•       Ethics and ML

先决条件

建议熟悉 IT 术语并具有 IT 相关工作经验。

专业发展单位 (PDU)

专业发展单位 (PDU)

  • 与会者可能有资格向项目管理协会 (PMI) 申请 14 个 PDU,以满足其继续教育要求,获得 PMP®、PgMP® 和 PMI-ACP® 认证。

认证考试

成功通过 (65%) 60 分钟的考试(包括 40 道多项选择题)即可获得 AIOps 基础证书。该认证由 PeopleCert 集团成员 DevOps Institute 管理和维护。

学习资料

  • 2 天的讲师指导培训和运动辅导
  • 学习手册(优秀的课后参考)
  • 参与旨在应用概念的独特练习
  • 示例文档、模板、工具和技术
  • 获得额外的增值资源和社区。

我们的工作坊时间表

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