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Machine Learning In Algorithmic Trading

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Published 2/2024
Created by Dr Ziad Francis
MP4 | Video: h264, 1280×720 | Audio: AAC, 44.1 KHz, 2 Ch
Genre: eLearning | Language: English | Duration: 73 Lectures ( 8h 49m ) | Size: 5.2 GB

Blending Algorithmic Trading with Machine Learning For Forex and Stock Market Indicators

What you’ll learn:
Understand the basics of Machine Learning and its applications in Algorithmic Trading.
Learn how to implement Machine Learning algorithms for predicting stock prices and making trading decisions.
Gain hands-on experience with real-world trading data and learn how to preprocess and analyze this data for Machine Learning.
Learn how to evaluate the performance of Machine Learning models in the context of Algorithmic Trading.

Requirements:
Python Basics
Trading Basics

Description:
A comprehensive course on “Machine Learning in Algorithmic Trading”. This course is designed to empower you with the knowledge and skills to apply Machine Learning techniques in Algorithmic Trading.In the world of finance, Machine Learning has revolutionized trading strategies. It offers automation, pattern recognition, and the ability to handle large and complex datasets. However, it also comes with challenges such as model complexity, the risk of overfitting, and the need to adapt to dynamic market conditions. This course aims to guide you through these challenges and rewards, providing you with a solid foundation in Machine Learning and its applications in Algorithmic Trading.The course begins with a deep dive into the basics of Machine Learning, covering key concepts and algorithms that are crucial for Algorithmic Trading. You will learn how to use Python, a versatile and beginner-friendly language, to implement Machine Learning algorithms for trading. With Python’s robust libraries like Pandas and NumPy, you will be able to handle and process large and complex financial datasets efficiently.As you progress through the course, you will learn how to use Machine Learning for predictive modeling. This involves studying historical market data to train a Machine Learning model that can make predictions about future market movements. These predictions can then be used to make better-informed trading decisions.You will also learn how to use Machine Learning for pattern recognition in market data. Machine Learning algorithms excel at identifying complex patterns and relationships in large datasets, enabling the discovery of trading signals and patterns that may not be apparent to human traders.By the end of this course, you will have a comprehensive understanding of how Machine Learning can be used in Algorithmic Trading. From acquiring and preprocessing data to creating hyperparameters, splitting data for evaluation, optimizing model parameters, making predictions, and assessing performance, you will gain insights into the entire process. This course is designed to be accessible to beginners with a basic understanding of Python and Machine Learning concepts, making it a great choice for anyone interested in learning about Algorithmic Trading and Machine Learning.


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