Discover how deep learning can be applied to stock price prediction by building a Recurrent Neural Network (RNN) with Long Short-Term Memory (LSTM) layers in Python. This hands-on course guides you through the complete workflow, from setting up your development environment and preparing financial datasets to training, evaluating, and visualising a deep learning model for time-series forecasting.

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
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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
- Financial Forecasting
- Statistical Visualization
- Development Environment
- Model Optimization
- Artificial Neural Networks
- Predictive Modeling
- Recurrent Neural Networks (RNNs)
- Data Transformation
- Exploratory Data Analysis
- Predictive Analytics
- Forecasting
- Model Training
- Deep Learning
- Data Processing
- Time Series Analysis and Forecasting
- Feature Engineering
- Data Preprocessing
- Model Evaluation
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Reviewed on Jan 2, 2026
Great stock prediction workflow! Preprocessing with Pandas was very helpful. Model evaluation is thorough. Would love more technical indicators, but definitely a professional and unique course.
Reviewed on Jan 14, 2026
The focus on capturing long-term dependencies is genius. It provides a logical roadmap that is unique to this course, ensuring you master every stage professionally.
Reviewed on Dec 31, 2025
This course gave me the confidence to build production-grade LSTM stock prediction systems. Exceptional in every aspect.
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