Fivetran vs. IBM DataStage

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
Fivetran
Score 8.5 out of 10
N/A
Fivetran replicates applications, databases, events and files into a high-performance data warehouse, after a five minute setup. The vendor says their standardized cloud pipelines are fully managed and zero-maintenance. The vendor says Fivetran began with a realization: For modern companies using cloud-based software and storage, traditional ETL tools badly underperformed, and the complicated configurations they required often led to project failures. To streamline and accelerate…
$0.01
per credit
IBM DataStage
Score 7.6 out of 10
N/A
IBM® DataStage® is a data integration tool that helps users to design, develop and run jobs that move and transform data. At its core, the DataStage tool supports extract, transform and load (ETL) and extract, load and transform (ELT) patterns. A basic version of the software is available for on-premises deployment, and the cloud-based DataStage for IBM Cloud Pak® for Data offers automated integration capabilities in a hybrid or multicloud environment.N/A
Pricing
FivetranIBM DataStage
Editions & Modules
Starter
$0.01
per credit
Standard
$0.01
per credit
Enterprise
$0.01
per credit
No answers on this topic
Offerings
Pricing Offerings
FivetranIBM DataStage
Free Trial
YesYes
Free/Freemium Version
NoNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeOptionalNo setup fee
Additional Details
More Pricing Information
Community Pulse
FivetranIBM DataStage
Features
FivetranIBM DataStage
Data Source Connection
Comparison of Data Source Connection features of Product A and Product B
Fivetran
10.0
Ratings
18% above category average
IBM DataStage
9.5
Ratings
12% above category average
Connect to traditional data sources10.00 Ratings10.00 Ratings
Connecto to Big Data and NoSQL10.00 Ratings9.00 Ratings
Data Transformations
Comparison of Data Transformations features of Product A and Product B
Fivetran
7.5
Ratings
8% below category average
IBM DataStage
8.0
Ratings
2% below category average
Simple transformations7.50 Ratings8.00 Ratings
Complex transformations7.40 Ratings8.00 Ratings
Data Modeling
Comparison of Data Modeling features of Product A and Product B
Fivetran
6.2
Ratings
25% below category average
IBM DataStage
6.3
Ratings
23% below category average
Data model creation2.00 Ratings5.00 Ratings
Metadata management4.00 Ratings5.00 Ratings
Business rules and workflow8.00 Ratings6.00 Ratings
Collaboration7.80 Ratings6.00 Ratings
Testing and debugging9.00 Ratings6.00 Ratings
Data Governance
Comparison of Data Governance features of Product A and Product B
Fivetran
8.3
Ratings
2% above category average
IBM DataStage
6.0
Ratings
30% below category average
Integration with data quality tools8.30 Ratings6.00 Ratings
Integration with MDM tools8.30 Ratings6.00 Ratings
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FivetranIBM DataStage
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Score 8.0 out of 10
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Score 8.0 out of 10
Enterprises
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Score 8.0 out of 10
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Score 8.0 out of 10
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User Ratings
FivetranIBM DataStage
Likelihood to Recommend
8.2
(0 ratings)
8.0
(0 ratings)
Usability
9.0
(0 ratings)
8.0
(0 ratings)
Performance
8.0
(0 ratings)
9.0
(0 ratings)
Support Rating
-
(0 ratings)
9.6
(0 ratings)
User Testimonials
FivetranIBM DataStage
Likelihood to Recommend
[Fivetran is] very well suited when you are using popular and common data sources, such as the major ad platforms, and SaaS platforms such as Salesforce. If the majority of your data sources are custom internal applications or databases, may be less value as you aren't leveraging the delivered connectors.
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Excellent Cloud data mapping tool and easy creating multiple project data analytics in real-time and the report distribution are excellent via this IBM product. Easy tool to provide data visualization and the integration is effective and helpful to migrating huge amounts of data across other platforms and different websites insights gathering.
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Pros
  • Simplified ETL from a wide range of data sources
  • Stable and painless data pipeline
  • Granular control over what parts of the data source are loaded
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  • Very reliable in handling data extraction, data transformation and loading
  • Flexibility in connecting to different type of databases, relational or non-relational
  • Great features such as parallel processing, hash handling, etc.
  • You can also take advantage of its FTP functions, and scheduling features if you need to.
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Cons
  • Doesn't include support for a Kinesis stream as a data source so couldn't be used for some use cases under consideration
  • Doesn't support the use of "BEFORE DELETE" triggers
  • No support for serverless Aurora
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  • You must understand and know the algorithms, since the wrong use of them generates more time in processing.
  • Metadata. You need to develop with connectors, and taking all the Metadata from the menu, all the data that you complete manually, you can't track it.
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Usability
Very easy and intuitive to setup and maintain as there usually are not that many options. Very well documented (e.g. how to setup each connector, how the schema looks like, any specific features of this connector etc.). Also the operation is intuitive, e.g. you have status pages, log pages, configuration pages etc. for each connector.
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Because it is a flexible tool that can manage many flows and create a strong solution with a interesting use of variables. Easy to scale up as you can copy jobs arleady build and modify them. SQL queries allow to be fast in development and have the pushdown feature, but you loose a little of user friendly look. Metadata management is not strong as a visual feature, but can be determine by job codes.
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Performance
It runs pretty well and gets our data from point A to point cluster quickly enough. Honestly, it's not something I think about unless it breaks and that's pretty rare.
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It could load thousands of records in seconds. But in the Parallel version, you need to understand how to particionate the data. If you use the algorithms erroneously, or the functionalities that it gives for the parsing of data, the performance can fall drastically, even with few records. It is necessary to have people with experience to be able to determine which algorithm to use and understand why.
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Support Rating
No answers on this topic
IBM offers different levels of support but in my experience being and IBM shop helps to get direct support from more knowledgeable technicians from IBM. Not sure on the cost of having this kind of support, but I know there's also general support and community blogs and websites on the Internet make it easy to troubleshoot issues whenever there's need for that.
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Alternatives Considered
Fivetran came well with the connectors' availability and updates with the source changes. We had an idea on data requirements in our case which helped us to work out on cost implication and take a decision for Fivetran as a data provider for our organization. These were 2 places where Fivetran out-performed, other vendors.
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No, it wasn’t my decision to use such an ETL product. I’m just the administrator at this point. I’ve heard there are other products there that are even on cloud support. That is much easier to use, more agile, and user-friendly. That doesn’t have that barrier from user to administrator to the developer standpoint.
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Return on Investment
  • Saved a lot of manual development days (unable to quantify)
  • Accelerated the time to add a new source to the data warehouse a lot
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  • Not directly related to ROI or cost figures. Only comment here is that IBM tools tend to be more costly than average ETL tools, but it depends on if the company is an IBM shop.
  • One positive aspect is the company has had not a need to switch ETL tool for years.
  • Upgrading to newer versions of the tool brings flexibility in the tool and up-to-date features in relation to other applications.
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ScreenShots