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Learner Reviews & Feedback for Deep Learning RNN & LSTM: Stock Price Prediction by EDUCBA

4.5
stars
10 ratings

About the Course

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. This hands-on course takes learners through the complete journey of building a stock price forecasting model with Python. Starting with environment setup and dataset exploration, participants will learn how to preprocess data, perform exploratory data analysis, and apply transformations that prepare inputs for deep learning models. The course then dives into constructing and training a Recurrent Neural Network, leveraging LSTM layers to capture sequential dependencies in stock prices. Learners will test predictions on unseen data and visualize results to interpret model accuracy. What makes this course unique is its practical project-based approach—instead of abstract theory, every step is tied to real-world stock price data from Apple. Whether you are a data science beginner or looking to specialize in time-series forecasting, this course equips you with skills to confidently apply deep learning models to financial predictions and beyond....

Top reviews

AS

Dec 27, 2025

The course offers excellent coverage of deep learning techniques for time-series forecasting in financial markets.

NA

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.

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1 - 10 of 10 Reviews for Deep Learning RNN & LSTM: Stock Price Prediction

By Suchismita P

Dec 26, 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.

By Atanu S

Dec 30, 2025

This course delivers solid theoretical understanding along with practical implementation of RNN and LSTM for stock forecasting.

By Rian D

Jan 1, 2026

This course gave me the confidence to build production-grade LSTM stock prediction systems. Exceptional in every aspect.

By anushka s

Dec 28, 2025

The course offers excellent coverage of deep learning techniques for time-series forecasting in financial markets.

By Hannah G

Jan 11, 2026

Best course available for learning LSTMs specifically tailored to realistic stock price prediction challenges.

By Ashwin M

Jan 9, 2026

I found this course extremely useful for understanding time-series prediction using deep learning. The practical implementation of RNN and LSTM models on stock data made the concepts much clearer and relevant to real financial scenarios.

By Maria T

Jan 7, 2026

The perfect blend of academic rigor and street-smart trading knowledge. I particularly loved the sections on handling non-stationarity and regime changes — topics most courses completely ignore.

By Noor A

Jan 3, 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.

By vinod k

Jan 15, 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.

By Arvind S

Jan 13, 2026

A professional roadmap to mastering AI in finance. This course doesn't just teach code; it builds a mindset for solving real-world predictive analytics challenges.