糖心vlog官网观看

IBM
IBM Machine Learning Professional Certificate
IBM

IBM Machine Learning Professional Certificate

Prepare for a career in machine learning. Gain the in-demand skills and hands-on experience to get job-ready in less than 3 months.

Kopal Garg
Xintong Li
Artem Arutyunov

Instructors: Kopal Garg

Access provided by New York State Department of Labor

86,180 already enrolled

Earn a career credential that demonstrates your expertise
4.6

(2,244 reviews)

Intermediate level

Recommended experience

3 months
at 10 hours a week
Flexible schedule
Learn at your own pace
Earn a career credential that demonstrates your expertise
4.6

(2,244 reviews)

Intermediate level

Recommended experience

3 months
at 10 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Master the most up-to-date practical skills and knowledge machine learning experts use in their daily roles

  • Learn how to compare and contrast different machine learning algorithms by creating recommender systems in Python

  • Develop working knowledge of KNN, PCA, and non-negative matrix collaborative filtering

  • Predict course ratings by training a neural network and constructing regression and classification models

Details to know

Shareable certificate

Add to your LinkedIn profile

Taught in English

See how employees at top companies are mastering in-demand skills

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Advance your career with in-demand skills

  • Receive professional-level training from IBM
  • Demonstrate your technical proficiency
  • Earn an employer-recognized certificate from IBM

Professional Certificate - 6 course series

What you'll learn

Skills you'll gain

Category: Data Cleansing
Category: Exploratory Data Analysis
Category: Machine Learning
Category: Feature Engineering
Category: Data Transformation
Category: Data Analysis
Category: Data Manipulation
Category: Pandas (Python Package)
Category: Probability & Statistics
Category: Data Science
Category: Data Quality
Category: Statistical Hypothesis Testing
Category: Statistical Inference
Category: Artificial Intelligence
Category: Statistical Analysis
Category: Data Access
Category: Jupyter

What you'll learn

Skills you'll gain

Category: Regression Analysis
Category: Supervised Learning
Category: Scikit Learn (Machine Learning Library)
Category: Statistical Modeling
Category: Predictive Modeling
Category: Performance Metric
Category: Statistical Analysis
Category: Feature Engineering
Category: Classification And Regression Tree (CART)
Category: Machine Learning

What you'll learn

Skills you'll gain

Category: Supervised Learning
Category: Machine Learning
Category: Machine Learning Algorithms
Category: Random Forest Algorithm
Category: Performance Metric
Category: Statistical Modeling
Category: Scikit Learn (Machine Learning Library)
Category: Predictive Modeling
Category: Feature Engineering
Category: Data Cleansing
Category: Business Analytics
Category: Classification And Regression Tree (CART)
Category: Applied Machine Learning
Category: Data Manipulation
Category: Regression Analysis
Category: Sampling (Statistics)
Category: Data Processing

What you'll learn

Skills you'll gain

Category: Unsupervised Learning
Category: Dimensionality Reduction
Category: Machine Learning Algorithms
Category: Data Analysis
Category: Text Mining
Category: Scikit Learn (Machine Learning Library)
Category: Data Science
Category: Linear Algebra
Category: Algorithms
Category: Big Data
Category: NumPy
Category: Feature Engineering
Category: Natural Language Processing
Category: Statistical Machine Learning
Category: Machine Learning
Category: Data Mining

What you'll learn

Skills you'll gain

Category: Deep Learning
Category: Keras (Neural Network Library)
Category: Dimensionality Reduction
Category: Generative AI
Category: Artificial Neural Networks
Category: Reinforcement Learning
Category: Natural Language Processing
Category: PyTorch (Machine Learning Library)
Category: Computer Vision
Category: Machine Learning Algorithms
Category: Unsupervised Learning
Category: Tensorflow
Machine Learning Capstone

Machine Learning Capstone

Course 620 hours

What you'll learn

  • Compare and contrast different machine learning algorithms by creating recommender systems in Python

  • Predict course ratings by training a neural network and constructing regression and classification models鈥

  • Create recommendation systems by applying your knowledge of KNN, PCA, and non-negative matrix collaborative filtering

  • Develop a final presentation and evaluate your peers鈥 projects

Skills you'll gain

Category: Exploratory Data Analysis
Category: Supervised Learning
Category: Applied Machine Learning
Category: Unsupervised Learning
Category: Regression Analysis
Category: Machine Learning
Category: Statistical Analysis
Category: Artificial Neural Networks
Category: Scikit Learn (Machine Learning Library)
Category: Data Presentation
Category: Tensorflow
Category: Python Programming
Category: Data Analysis
Category: Technical Communication
Category: Keras (Neural Network Library)

Earn a career certificate

Add this credential to your LinkedIn profile, resume, or CV. Share it on social media and in your performance review.

Instructors

Kopal Garg
IBM
1 Course38,206 learners
Xintong Li
IBM
2 Courses54,369 learners
Artem Arutyunov
IBM
1 Course17,621 learners

Offered by

IBM

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