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No Code And No Math Machine Learning

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Published 9/2022
MP4 | Video: h264, 1280×720 | Audio: AAC, 44.1 KHz
Language: English | Size: 1.69 GB | Duration: 5h 6m

Machine learning for everyone! Google Vertex AI, Data Robot AI, Obviously AI, Big ML, Microsoft Azure and Orange!

What you’ll learn
Build machine learning models to use on real problems without a single line of code and no math skills
Use the main tools applied in classification, regression and time series forecasting problems
Implement machine learning in the following tools: Google Vertex AI, Data Robot AI, Obviously AI, Big ML, Microsoft Azure and Orange
Learn how to deploy machine learning models
Requirements
There are no prerequisites, however, you will enjoy it better if you know the basics of machine learning
No programming or math experience required
Description
If you want to learn machine learning but you feel intimidated by programming or math fundamentals, this course is for you!You are going to learn how to build projects using six tools that do not require any prior knowledge of computer programming or math! This course was designed for you to create hands-on projects quickly and easily, without a single line of code. It is suitable for beginners and also for students with intermediate or advanced knowledge, who need to increase productivity but at the same time do not have the time to implement code from scratch. You can perform exploratory data analysis, build, train, test and put machine learning models into production with a few clicks!We are going to cover 6 tools that are widely used for commercial projects: Google Vertex AI, Data Robot AI, Obviously AI, Big ML, Microsoft Azure Machine Learning, and Orange! All projects will be developed calmly and step by step, so that you can make the most of the content. There is an exercise along with the solution at the end of each section, so you can practice the steps for each tool! There are more than 30 lectures and 5 hours of videos!

Overview

Section 1: Introduction

Lecture 1 Course content

Lecture 2 Machine Learning – intuition

Lecture 3 Course materials

Section 2: Google Vertex AI

Lecture 4 Overview

Lecture 5 Datasets

Lecture 6 Training

Lecture 7 Regression metrics

Lecture 8 Deploy and predictions

Lecture 9 HOMEWORK

Lecture 10 Homework solution

Section 3: Data Robot AI

Lecture 11 Overview

Lecture 12 Datasets

Lecture 13 Classification metrics

Lecture 14 Training

Lecture 15 Deploy and predictions

Lecture 16 HOMEWORK

Lecture 17 Homework solution

Section 4: Obviously AI

Lecture 18 Overview

Lecture 19 Dataset, training, and predictions

Lecture 20 HOMEWORK

Lecture 21 Homework solution

Section 5: Big ML

Lecture 22 Overview

Lecture 23 Dataset

Lecture 24 Training and evaluating

Lecture 25 Predictions

Lecture 26 HOMEWORK

Lecture 27 Homework solution

Section 6: Microsoft Azure

Lecture 28 Overview

Lecture 29 Workspace and dataset

Lecture 30 Machine learning pipeline

Lecture 31 Evaluation and deploy

Lecture 32 Auto ML

Lecture 33 HOMEWORK

Lecture 34 Homework solution

Section 7: Orange

Lecture 35 Overview

Lecture 36 Classification

Lecture 37 Time series

Lecture 38 HOMEWORK

Lecture 39 Homework solution

Section 8: Final remarks

Lecture 40 Final remarks

People interested in building real machine learning models without a single line of code,People interested in starting their studies in Machine Learning and Data Science,Students who have little programming or math experience,Undergraduate and graduate students who are studying subjects related to the area of Artificial Intelligence


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