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    • Reinforcement Learning

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    86 results for "reinforcement learning"

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      Politecnico di Milano

      Artificial Intelligence: an Overview

      Skills you'll gain: Machine Learning, Theoretical Computer Science, Computational Thinking, Computer Programming, Applied Machine Learning, Entrepreneurship, Leadership and Management, Research and Design, Strategy and Operations, Machine Learning Algorithms, Reinforcement Learning, Accounting, Business Analysis, Business Communication, Business Psychology, Communication, Critical Thinking, Culture, Decision Making, Econometrics, Finance, General Accounting, General Statistics, Human Resources, Market Research, Marketing, Organizational Development, Probability & Statistics, Regulations and Compliance, Sales, Strategy, Algorithms

      4.7

      (102 reviews)

      Beginner · Specialization · 3-6 Months

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      Autodesk

      Autodesk Certified Professional: Revit for Structural Design Exam Prep

      Skills you'll gain: Computer Graphics, Graphics Software, Collaboration, Communication, Leadership and Management, Machine Learning, Reinforcement Learning

      4.7

      (381 reviews)

      Advanced · Course · 1-4 Weeks

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      University of Alberta

      Sample-based Learning Methods

      Skills you'll gain: Machine Learning, Reinforcement Learning, Business Psychology, Machine Learning Algorithms, Markov Model, Entrepreneurship, Leadership and Management, Planning, Software Architecture, Software Engineering, Supply Chain and Logistics, Theoretical Computer Science

      4.8

      (1.2k reviews)

      Intermediate · Course · 1-3 Months

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      University of Washington, Microsoft

      Autonomous AI for Industry

      Skills you'll gain: Entrepreneurship, Leadership and Management, Marketing, Sales, Strategy, Strategy and Operations, Computer Networking, Decision Making, Deep Learning, Machine Learning, Network Model, Reinforcement Learning, Business Psychology, Innovation

      4.6

      (33 reviews)

      Beginner · Specialization · 3-6 Months

    • Free

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      Caltech

      The Science of the Solar System

      Skills you'll gain: Business Analysis, Critical Thinking, Data Analysis, Data Visualization, Design and Product, Entrepreneurship, Exploratory Data Analysis, Leadership and Management, Machine Learning, Mathematical Theory & Analysis, Mathematics, Probability & Statistics, Problem Solving, Product Lifecycle, Reinforcement Learning, Research and Design, Scientific Visualization, Strategy and Operations

      4.8

      (737 reviews)

      Mixed · Course · 1-3 Months

    • Free

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      Hebrew University of Jerusalem

      Israel State and Society

      Skills you'll gain: Business Psychology, Culture, Leadership and Management, Entrepreneurship, Adaptability, Applied Machine Learning, Econometrics, General Statistics, Machine Learning, Market Research, Probability & Statistics, Reinforcement Learning, Research and Design

      4.7

      (337 reviews)

      Beginner · Course · 3-6 Months

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      University of Colorado Boulder

      Machine Learning: Theory and Hands-on Practice with Python

      Skills you'll gain: Machine Learning, Statistical Machine Learning, Machine Learning Algorithms, Probability & Statistics, Python Programming, Statistical Programming, Regression, Deep Learning, Data Analysis, Artificial Neural Networks, Applied Machine Learning, Correlation And Dependence, Statistical Analysis, Statistical Tests, Exploratory Data Analysis, Algorithms, Reinforcement Learning, Theoretical Computer Science, Basic Descriptive Statistics, Data Mining, Feature Engineering, General Statistics, Natural Language Processing, Computer Programming, Data Management, Data Structures, Dimensionality Reduction

      3.0

      (30 reviews)

      Intermediate · Specialization · 3-6 Months

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      University of Alberta

      Prediction and Control with Function Approximation

      Skills you'll gain: Machine Learning, Reinforcement Learning, Artificial Neural Networks, Entrepreneurship, Deep Learning, Machine Learning Algorithms, Algorithms, Computer Programming, Python Programming, Statistical Programming, Theoretical Computer Science, Business Psychology

      4.8

      (757 reviews)

      Intermediate · Course · 1-3 Months

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      Alberta Machine Intelligence Institute

      Machine Learning: Algorithms in the Real World

      Skills you'll gain: Machine Learning, Machine Learning Algorithms, Strategy and Operations, Applied Machine Learning, Mathematics, Algorithms, Artificial Neural Networks, Data Analysis, Regression, Theoretical Computer Science, Reinforcement Learning, Basic Descriptive Statistics, Computer Programming, Data Analysis Software, Data Warehousing, Exploratory Data Analysis, Extract, Transform, Load, Linear Algebra, Probability & Statistics, Python Programming, Statistical Analysis

      4.6

      (1k reviews)

      Intermediate · Specialization · 3-6 Months

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      Korea Advanced Institute of Science and Technology(KAIST)

      Big data and Language 1

      Skills you'll gain: Big Data, Data Management, Applied Machine Learning, Communication, Machine Learning, Reinforcement Learning

      4.5

      (113 reviews)

      Beginner · Course · 1-4 Weeks

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      DeepLearning.AI

      KI für alle

      Skills you'll gain: Machine Learning, Applied Machine Learning, Artificial Neural Networks, Deep Learning, Reinforcement Learning

      4.8

      (6 reviews)

      Beginner · Course · 1-4 Weeks

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      Free

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      Universidad de los Andes

      Introducción a la inteligencia artificial contemporánea

      Skills you'll gain: Machine Learning, Computer Programming, Machine Learning Algorithms, Natural Language Processing, Statistical Programming, Theoretical Computer Science, Applied Machine Learning, Business Psychology, Computational Thinking, Computer Vision, Culture, Data Management, Databases, Decision Making, Deep Learning, Entrepreneurship, Human Computer Interaction, Human Resources, Leadership and Management, Python Programming, Reinforcement Learning, SQL, Tensorflow, User Experience

      4.7

      (18 reviews)

      Beginner · Course · 1-3 Months

    Searches related to reinforcement learning

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    1234…8

    In summary, here are 10 of our most popular reinforcement learning courses

    • Artificial Intelligence: an Overview: Politecnico di Milano
    • Autodesk Certified Professional: Revit for Structural Design Exam Prep: Autodesk
    • Sample-based Learning Methods: University of Alberta
    • Autonomous AI for Industry: University of Washington
    • The Science of the Solar System: Caltech
    • Israel State and Society: Hebrew University of Jerusalem
    • Machine Learning: Theory and Hands-on Practice with Python: University of Colorado Boulder
    • Prediction and Control with Function Approximation: University of Alberta
    • Machine Learning: Algorithms in the Real World: Alberta Machine Intelligence Institute
    • Big data and Language 1: Korea Advanced Institute of Science and Technology(KAIST)

    Skills you can learn in Machine Learning

    Python Programming (33)
    Tensorflow (32)
    Deep Learning (30)
    Artificial Neural Network (24)
    Big Data (18)
    Statistical Classification (17)
    Reinforcement Learning (13)
    Algebra (10)
    Bayesian (10)
    Linear Algebra (10)
    Linear Regression (9)
    Numpy (9)

    Frequently Asked Questions about Reinforcement Learning

    • Reinforcement learning is a machine learning paradigm in which software agents use a process of trial and error to learn how to complete tasks in a way that maximizes cumulative rewards as defined by their programmers. In contrast to supervised learning paradigms, reinforcement learning systems do not need labeled input/output pairs or explicit corrections of suboptimal actions; and, in contrast to unsupervised learning, reinforcement learning defines an explicit goal, which is the maximization of the value returned by the Q-learning (or “quality” learning) algorithm as a result of its actions.

      Because it combines the goal orientation of supervised learning with the flexibility of unsupervised learning, reinforcement learning is very important in creating artificial intelligence (AI) applications requiring successful problem-solving in complex situations. For example, they are often used in financial engineering to develop optimal trading algorithms for the stock market. They are also used to build intelligent systems to allow robots and self-driving cars to navigate real-world environments safely.‎

    • As one of the main paradigms for machine learning, reinforcement learning is an essential skill for careers in this fast-growing field. Reinforcement learning is particularly important for developing artificially intelligent digital agents for real-world problem-solving in industries like finance, automotive, robotics, logistics, and smart assistants. According to Glassdoor, the average annual salary for machine learning engineers in America is $114,121 per year, a high level of pay which reflects the high level of demand for this expertise.‎

    • Absolutely. Coursera hosts a wide variety of courses in reinforcement learning and related topics in machine learning, as well as the use of these techniques in applied contexts such as finance and self-driving cars. These courses and Specializations are offered by top-ranked institutions in this field, including the deepmind.ai, New York University, the University of Toronto, and the University of Alberta’s Machine Intelligence Institute. You can learn remotely on a flexible schedule while still getting feedback from expert professors and instructors, ensuring that you’ll get a high quality education with all the reinforcement you need to learn these valuable skills with confidence.‎

    • Because reinforcement learning itself isn't a beginner-level subject, you'll need to have a good grasp on the fundamentals of machine learning before starting to learn it. Additionally, many courses will require you to have a strong background in high-level mathematics such as linear algebra, statistics, and probability. Most courses will require you to be proficient in Python, although people familiar with other programming languages like C++, Matlab, and JavaScript can often use those skills to help them learn reinforcement learning. Having the ability to implement algorithms from pseudocode may be another prerequisite. As you progress, you'll gain skills in using reinforcement learning solutions to solve problems with probabilistic artificial intelligence, function approximation, and intelligent systems.‎

    • People best suited to roles within the reinforcement learning realm should have a passion for machine learning with a drive for analytics and data and an interest in providing frontline support to solve real-world problems while leveraging innate creative problem-solving skills. Additionally, many companies like to see that candidates have strong communication skills and the ability to collaborate across disciplines and departments. There are a variety of roles associated with reinforcement learning, including analysts, engineers, and researchers. In late February 2021, there were more than 1,800 job listings for people proficient in reinforcement learning on LinkedIn.‎

    • If you want to be a part of the future of machine learning, learning reinforcement learning may be a good move for you. This innovative machine learning technique creates an algorithm that learns through trial and error, leading to a combination of short- and long-term rewards such as the ability to define sequences to solve problems using a reward-based learning approach. It's useful across multiple industries, including the tech industry, business, advertising, finance, and e-commerce, all of which find reinforcement learning useful in part because of its ability to offer greater personalization. Ultimately, if you want to work within AI and machine learning, this could be a step to advancing your goals.‎

    This FAQ content has been made available for informational purposes only. Learners are advised to conduct additional research to ensure that courses and other credentials pursued meet their personal, professional, and financial goals.
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