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Artificial Intelligence using LLM

Learn how to apply tools that utilize artificial intelligence through a fundamental approach to AI.

Machine Learning(ML)
Statistics
Big Data
AI
classifier

40개 수업 학습

라이브 1 회

ywjang23583님과 함께해요!

I worked as a developer at LG Electronics, a telecommunications company, for about 27 years. Since retiring, I have been teaching introductory software coding courses at various universities, as well as lecturing at vocational schools and government offices. Currently, I am teaching an IoT course at a vocational training school.

I would like to record and share lectures on the following topics.

1. R Statistics Basic/Advanced Course

2. Arduino for the sensor data collection part of IoT technology techniques

3. Raspberry Pi Technology

4. Basic/Advanced Course for AI Utilization (Understanding Basic Algorithms and Tool Usage)

5.Systematic platform implementation techniques for smart farm configuration

6. Tableau and PowerBI visualization techniques

7. Six Sigma technical techniques in the field

8. Building a Big Data Analysis Hadoop Ecosystem

More


From Non-Major to AI Expert
Step-by-Step Mastery



"Did AI feel difficult to you?"
From mathematical principles to utilizing ChatGPT, conquer everything about AI with a systematic curriculum of 40 lectures.

As an active developer with 27 years of experience and a veteran instructor, I have generously included the know-how I have personally experienced and taught.
Theory made easy, practice made solid!
Seize the opportunity to become an AI expert that even non-majors can immediately apply to real-world tasks.

AI, now it becomes your weapon.




What you can gain from this course

AI, now even non-majors can start with confidence.

With 27 years of development experience, I will help you clearly understand the core principles of AI without the need for complex mathematics.

By focusing on hands-on projects using SPSS Modeler and R, you will develop problem-solving skills that can be applied immediately in the field.

Beyond simple skill acquisition, you will grow into an expert who gains data-driven insights to solve business problems with AI.

You will be reborn as an expert equipped with practical AI capabilities.
I will be with you throughout your AI career journey.


With 27 years of experience, now transform into an AI expert.


I worked as a developer at LG Electronics for 27 years.

After leaving the company, I continued teaching coding at universities and vocational schools. I am still teaching Internet of Things (IoT) courses today.

All of these experiences led to my AI lectures.

However, I wasn't able to teach AI from the very beginning.

Through my experience in the field and in teaching, I have contemplated how to convey AI in an easy and clear manner.

I now want to share with you the fascination of AI, which discovers patterns within data.

This course goes beyond simple theoretical learning and will help you develop practical data analysis skills using R and SPSS Modeler.


In the world of AI, even non-majors can gain confidence with instructor Young-wan Jang. I will be your reliable partner for a successful AI journey. Get started right now!



Lecture Plan

First Steps in AI: From Basics to Application

Section 1

Fundamentals of Machine Learning Algorithms and Setting Up the Development Environment

In this section, you will understand the basic concepts of AI algorithms and set up a development environment using R and RStudio. You will explore the principles of supervised and unsupervised learning, and prepare for hands-on practice by learning dataset configuration and preprocessing techniques for machine learning.

Section 2

SPSS Modeler-based Predictive Modeling and Business Data Applications

You will learn how to apply various machine learning algorithms, such as data mining, predictive modeling, and association rule analysis, to practical business scenarios using SPSS Modeler without coding. You will cultivate business problem-solving skills by utilizing advanced techniques such as decision trees and neural networks.




Recommended Audience

Recommended for these people

Non-majors wishing to transition into an AI career

Data analysts and developers looking to enhance their skills




Notes before taking the course


Practice Environment

  • Operating System: Both Windows and macOS are supported.

  • Required Software: R and RStudio IDE are required.

  • Recommended Specifications: At least 8GB RAM and 20GB of free disk space are required.

Prerequisite Knowledge and Notices

  • It is helpful to have an understanding of basic AI and machine learning concepts.

  • Basic learning experience with the R programming language is helpful.

  • Since this course is designed for non-majors, it is fine even if you lack a mathematical background.

Learning Materials

  • Lecture slide PDF files are provided.

  • Example code and datasets required for the practice sessions are provided.

  • We provide additional materials for the key algorithms covered in the lecture.


강사 프로필
LIVE

함께 소통할 수 있는 라이브가 예정되어 있어요!

07.02.목

오후 01:00

LLM활용 인공지능 알고리즘 학습

6월

30일

챌린지 시작일

2026년 6월 30일 오후 03:00

챌린지 종료일

2026년 7월 31일 오후 02:30

챌린지 커리큘럼

All

41 lectures ∙ (14hr 41min)

Course Materials:

Lecture resources
챌린지 전용 수업
Live

챌린지에서 배워요

  • Supervised/Unsupervised algorithm design based on R/RStudio

  • Building predictive models using machine learning algorithms (regression, classification, ensemble)

  • Completion of a practical project using an AI GUI utilization system

Recommended for
these people

Who is this course right for?

  • Non-majors and job seekers preparing for a career transition into the AI field

  • Working data analysts who want to go beyond data analysis and build capabilities in constructing predictive models.

  • Full-stack and backend developers looking to integrate AI features into their own services

Need to know before starting?

  • Basic programming experience (understanding of basic R coding syntax)

  • High school level math knowledge (no prior study of calculus or linear algebra required)

  • Interest in AI technology and the determination to complete all 40 lectures

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