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
Access provided by University of Computer Studies, Mandalay
13 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
- Predictive Analytics
- Network Model
- Exploratory Data Analysis
- Development Environment
- Forecasting
- Data Transformation
- Model Training
- Deep Learning
- Project Implementation
- Model Evaluation
- Time Series Analysis and Forecasting
- Data Preprocessing
- Financial Forecasting
- Statistical Visualization
- Recurrent Neural Networks (RNNs)
- Artificial Neural Networks
- Predictive Modeling
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Reviewed on Dec 29, 2025
This course delivers solid theoretical understanding along with practical implementation of RNN and LSTM for stock forecasting.
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.
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