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PyTorch mindshare

As of June 2026, the mindshare of PyTorch in the AI Development Platforms category stands at 2.7%, up from 1.6% compared to the previous year, according to calculations based on PeerSpot user engagement data.
AI Development Platforms Mindshare Distribution
ProductMindshare (%)
PyTorch2.7%
Gemini Enterprise Agent Platform8.0%
Azure OpenAI6.8%
Other82.5%
AI Development Platforms

PeerResearch reports based on PyTorch reviews

TypeTitleDate
CategoryAI Development PlatformsJun 23, 2026Download
ProductReviews, tips, and advice from real usersJun 23, 2026Download
ComparisonPyTorch vs Gemini Enterprise Agent PlatformJun 23, 2026Download
ComparisonPyTorch vs Azure OpenAIJun 23, 2026Download
ComparisonPyTorch vs Hugging FaceJun 23, 2026Download
Suggested products
TitleRatingMindshareRecommending
Gemini Enterprise Agent Platform4.18.0%100%15 interviewsAdd to research
Hugging Face4.14.9%100%13 interviewsAdd to research
 
 
Key learnings from peers

Valuable Features

Room for Improvement

Pricing

Popular Use Cases

Service and Support

Deployment

Scalability

Stability

Review data by company size

By reviewers
Company SizeCount
Small Business5
Midsize Enterprise4
Large Enterprise4
By reviewers
By visitors reading reviews
Company SizeCount
Small Business48
Midsize Enterprise18
Large Enterprise59
By visitors reading reviews

Top industries

By visitors reading reviews
Manufacturing Company
17%
University
11%
Financial Services Firm
10%
Comms Service Provider
9%
Performing Arts
7%
Educational Organization
7%
Construction Company
6%
Computer Software Company
4%
Government
4%
Healthcare Company
3%
Legal Firm
3%
Insurance Company
2%
Energy/Utilities Company
2%
Real Estate/Law Firm
2%
Outsourcing Company
2%
Retailer
2%
Transportation Company
2%
Wholesaler/Distributor
1%
Aerospace/Defense Firm
1%
Engineering Company
1%
Logistics Company
1%
Marketing Services Firm
1%
Media Company
1%
Non Profit
1%
Pharma/Biotech Company
1%
Leisure / Travel Company
1%

Compare PyTorch with alternative products

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PyTorch Reviews Summary
Author infoRatingReview Summary
AI/ML Co-Lead at Developer Student Clubs - GGV4.0I used PyTorch for machine learning projects like Code Paradigm, appreciating its developer-friendly, open-source nature, and Mac M1 compatibility. However, it needs better ARM support for improved performance. I have limited experience with TensorFlow.
Team Lead at Tech Mahindra Limited4.0I use PyTorch for managing libraries, code development, and GitLab integration. It excels in AIML projects, offering reliability, security, and user-friendliness with efficient project management. However, I wish there were better learning documents for PySearch.
Machine Learning Engineer at IIIT Kottayam4.0I've been using PyTorch for research, implementing projects like image captioning and chatbots. It's great for building projects from scratch with deep control over model parameters. Initially learned TensorFlow, but switched to PyTorch as it gained popularity.
AWS Engineer at Neurolov.ai5.0I develop AI and machine learning projects using PyTorch, appreciating its scalability for large models and superior text-to-visual data conversion compared to OpenCV. Improvement is needed in compiling latency. Before PyTorch, I hadn't used any other tools.
Data Scientist. at a computer software company with 501-1,000 employees3.5We use PyTorch for style transfer and video stream classification due to its simplicity and support for parallelism. While it offers easy scalability and adoption with a simpler interface than TensorFlow, beginners may struggle with its documentation complexity.
Financial Analyst 4 (Supply Chain & Financial Analytics) at Juniper Networks4.5I use PyTorch for reliability engineering to predict product failures. Its standout feature is performance, enabling easy, production-ready coding. Despite occasional stability issues with large data, it's user-friendly and integrates smoothly with AWS.
Co-Founder at Afriziki4.5I primarily use PyTorch for NLP tasks due to its backward compatibility and simplicity, unlike TensorFlow, which often required relearning. Although lacking in production tooling compared to TensorFlow, PyTorch's growing credibility in research is beneficial.
Associate Machine Learning Engineer at a tech services company with 501-1,000 employees4.5I use PyTorch in my company for building models due to its comprehensive documentation and control over graph structures. While it excels in handling tensors, improvements can be made to streamline versions and integrate new functionalities without manual updates.
Lead Machine Learning Engineer at Schlumberger4.5My team uses this stable, scalable solution for training mathematical models, finding its framework valuable and setup easy. Though model training could be faster, I rate it 9/10 given its widespread use as Google's framework.
Data Scientist at a tech services company with 201-500 employees4.0I use PyTorch for developing machine learning models when fine-tuning is needed, preferring it over TensorFlow for customization. Automation in machine learning with PyTorch is challenging, and my company also considers other solutions like Pinecone and PGVector.
Rohan Sharma - PeerSpot reviewer
Rohan Sharma
AI/ML Co-Lead at Developer Student Clubs - GGV
Feb 12, 2025
Enabled creation of innovative projects through developer-friendly features
Praveen Kumar Tiwari - PeerSpot reviewer
Praveen Kumar Tiwari
Team Lead at Tech Mahindra Limited
May 28, 2024
Secure and user-friendly solution for AIML project development
TS
Tushaar Sharma
Machine Learning Engineer at IIIT Kottayam
Nov 29, 2024
Gain control over custom model parameters for advanced research projects
Karthikeyan Katkam - PeerSpot reviewer
Karthikeyan Katkam
AWS Engineer at Neurolov.ai
Nov 18, 2024
Better at converting actual text data to visual data than its competitors
reviewer2384079 - PeerSpot reviewer
reviewer2384079
Data Scientist. at a computer software company with 501-1,000 employees
Mar 27, 2024
Allows us to do batched mode, distributed data parallelism, and model parallelism but somewhat complicated for a beginner
Jithin James - PeerSpot reviewer
Jithin James
Financial Analyst 4 (Supply Chain & Financial Analytics) at Juniper Networks
Mar 28, 2024
User-friendly, easy to learn, performs well, and is more advanced than other tools
Arucy Lionel - PeerSpot reviewer
Arucy Lionel
Co-Founder at Afriziki
Nov 27, 2023
Offers good backward compatible and simple to use
reviewer2514822 - PeerSpot reviewer
reviewer2514822
Associate Machine Learning Engineer at a tech services company with 501-1,000 employees
Jul 15, 2024
Fairly easy to learn for beginners since it provides good documentation
Swayan Jeet Mishra - PeerSpot reviewer
Swayan Jeet Mishra
Lead Machine Learning Engineer at Schlumberger
Oct 31, 2022
Easy setup and useful in training mathematical models
Murali Mallikarjuna Perumalla - PeerSpot reviewer
Murali Mallikarjuna Perumalla
Data Scientist at a tech services company with 201-500 employees
May 29, 2024
Helpful to develop machine learning models