Amazon SageMaker AI vs. NVIDIA AI Enterprise

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
Amazon SageMaker AI
Score 9.0 out of 10
N/A
Amazon SageMaker AI is a fully managed AWS service for building, training, customizing, deploying, and managing AI and machine-learning models. It provides development environments, managed training infrastructure, model-serving options, experiment tracking, and governance controls for the model development lifecycle.N/A
NVIDIA AI Enterprise
Score 0.0 out of 10
N/A
NVIDIA AI Enterprise is an end-to-end, cloud-native software platform that accelerates data science pipelines and streamlines development and deployment of production-grade AI applications, including generative AI. The solution is designed to ensure a smooth transition from pilot to production.N/A
Pricing
Amazon SageMaker AINVIDIA AI Enterprise
Editions & Modules
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Offerings
Pricing Offerings
Amazon SageMaker AINVIDIA AI Enterprise
Free Trial
NoNo
Free/Freemium Version
NoNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeNo setup fee
Additional Details
More Pricing Information
Community Pulse
Amazon SageMaker AINVIDIA AI Enterprise
Best Alternatives
Amazon SageMaker AINVIDIA AI Enterprise
Small Businesses
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Score 8.4 out of 10
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Score 8.1 out of 10
Medium-sized Companies
SAP Business Data Cloud
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Score 8.6 out of 10
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Score 8.1 out of 10
Enterprises
Dataiku
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Score 8.6 out of 10
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User Ratings
Amazon SageMaker AINVIDIA AI Enterprise
Likelihood to Recommend
9.0
(5 ratings)
-
(0 ratings)
User Testimonials
Amazon SageMaker AINVIDIA AI Enterprise
Likelihood to Recommend
Amazon AWS
It allows for one-click processes and for things to be auto checked before they are moved through the process but through the system. It also makes training easy. I am able to train users on the basic fundamentals of the tool and how it is used very easily as it is fully managed on its own which is incredible.
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NVIDIA
No answers on this topic
Pros
Amazon AWS
  • Machine Learning at scale by deploying huge amount of training data
  • Accelerated data processing for faster outputs and learnings
  • Kubernetes integration for containerized deployments
  • Creating API endpoints for use by technical users
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NVIDIA
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Cons
Amazon AWS
  • It's very good for the hardcore programmer, but a little bit complex for a data scientist or new hire who does not have a strong programming background.
  • Most of the popular library and ML frameworks are there, but we still have to depend on them for new releases.
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NVIDIA
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Alternatives Considered
Amazon AWS
Amazon SageMaker took the heavy lifting out of building and creating models. It allowed for our organization to use our current system for integration and essentially added on a feature to help all levels of Data scientists and IT professionals in our department and company as a whole. The training was simple as well.
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NVIDIA
No answers on this topic
Return on Investment
Amazon AWS
  • We have been able to deliver data products more rapidly because we spend less time building data pipelines and model servers.
  • We can prototype more rapidly because it is easy to configure notebooks to access AWS resources.
  • For our use-cases, serving models is less expensive with SageMaker than bespoke servers.
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NVIDIA
No answers on this topic
ScreenShots