By the end of this course, learners will be able to identify the foundations of deep learning, analyze stock price datasets, apply preprocessing and feature scaling techniques, develop an RNN with LSTM layers, and evaluate predictions using real-world financial data.

Deep Learning RNN & LSTM: Stock Price Prediction

Deep Learning RNN & LSTM: Stock Price Prediction
This course is part of Deep Learning with Python: CNN, ANN & RNN Specialization

Instructor: EDUCBA
Included with
11 reviews
What you'll learn
Preprocess stock datasets with feature scaling and EDA.
Build and train RNNs with LSTM layers for time-series data.
Evaluate and visualize stock predictions using real datasets.
Skills you'll gain
- Data Transformation
- Financial Forecasting
- Time Series Analysis and Forecasting
- Model Evaluation
- Data Processing
- Model Optimization
- Data Preprocessing
- Development Environment
- Statistical Visualization
- Recurrent Neural Networks (RNNs)
- Predictive Modeling
- Artificial Neural Networks
- Feature Engineering
- Deep Learning
- Predictive Analytics
- Model Training
- Exploratory Data Analysis
- Forecasting
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Reviewed on Dec 27, 2025
The course offers excellent coverage of deep learning techniques for time-series forecasting in financial markets.
Reviewed on Dec 25, 2025
Great pacing and very logical progression of topics. The stock price prediction projects feel like real-world challenges. One of the most useful deep learning courses I've taken.
Reviewed on Dec 29, 2025
This course delivers solid theoretical understanding along with practical implementation of RNN and LSTM for stock forecasting.
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