Dataiku vs. IBM InfoSphere Information Server

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
Dataiku
Score 7.6 out of 10
N/A
The Dataiku platform unifies all data work, from analytics to Generative AI. It can modernize enterprise analytics and accelerate time to insights with visual, cloud-based tooling for data preparation, visualization, and workflow automation.N/A
IBM InfoSphere Information Server
Score 8.0 out of 10
N/A
IBM InfoSphere Information Server is a data integration platform used to understand, cleanse, monitor and transform data. The offerings provide massively parallel processing (MPP) capabilities.N/A
Pricing
DataikuIBM InfoSphere Information Server
Editions & Modules
Discover
Contact sales team
Business
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Enterprise
Contact sales team
No answers on this topic
Offerings
Pricing Offerings
DataikuIBM InfoSphere Information Server
Free Trial
YesNo
Free/Freemium Version
YesNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeNo setup fee
Additional Details
More Pricing Information
Community Pulse
DataikuIBM InfoSphere Information Server
Considered Both Products
Dataiku
Chose Dataiku
Strictly for Data Science operations, Anaconda can be considered as a subset of Dataiku DSS. While Anaconda supports Python and R programming languages, Dataiku also provides this facility, but also provides GUI to creates models with just a click of a button. This provides the …
Chose Dataiku
Open source availability is a critical factor given licensing cost of other platforms and budget reasons. Secondly, the available features in the community version covers most of the use cases, thus making it comparable or even outdo commercial versions of other software. …
Chose Dataiku
Anaconda is mainly used by professional data scientists who have profound knowledge of Python coding, mainly used for building some new algorithm block or some optimization, then the module will be integrated into the Dataiku pipeline/workflow. While Dataiku can be used by …
IBM InfoSphere Information Server
Chose IBM InfoSphere Information Server
I particularly believe that Information Server, especially DataStage, is superior in many aspects to the Oracle Data Integrator tool. Several market analysts such as Gartner and / or Forrester better position DataStage on the Oracle solution.
Chose IBM InfoSphere Information Server
DataStage is more robust and stable than ODI
The ability to perform complex transformations or implement business rules is much more developed in DS
Chose IBM InfoSphere Information Server
Denodo not an ETL tool but you can manage your data with it as well as Infosphere
Chose IBM InfoSphere Information Server
Information Server and Informatica PowerCenter are the two leading integration platforms worldwide. Information Server has a better integration with other IBM products such as MDM or Cognos but the decision to use one or another platform is more a price decision and quantity of …
Chose IBM InfoSphere Information Server
Information can be used for large but simple implementation. InfoSphere provides more intergaration options with outside world. Abinitio is great product but stopped innvoating and is not kept up to date with market needs and changes. Talend is good new product. Good Big Data …
Features
DataikuIBM InfoSphere Information Server
Platform Connectivity
Comparison of Platform Connectivity features of Product A and Product B
Dataiku
9.1
Ratings
8% above category average
IBM InfoSphere Information Server
-
Ratings
Connect to Multiple Data Sources10.00 Ratings00 Ratings
Extend Existing Data Sources10.00 Ratings00 Ratings
Automatic Data Format Detection10.00 Ratings00 Ratings
MDM Integration6.50 Ratings00 Ratings
Data Exploration
Comparison of Data Exploration features of Product A and Product B
Dataiku
10.0
Ratings
18% above category average
IBM InfoSphere Information Server
-
Ratings
Visualization9.90 Ratings00 Ratings
Interactive Data Analysis10.00 Ratings00 Ratings
Data Preparation
Comparison of Data Preparation features of Product A and Product B
Dataiku
10.0
Ratings
20% above category average
IBM InfoSphere Information Server
-
Ratings
Interactive Data Cleaning and Enrichment10.00 Ratings00 Ratings
Data Transformations10.00 Ratings00 Ratings
Data Encryption10.00 Ratings00 Ratings
Built-in Processors10.00 Ratings00 Ratings
Platform Data Modeling
Comparison of Platform Data Modeling features of Product A and Product B
Dataiku
8.7
Ratings
4% above category average
IBM InfoSphere Information Server
-
Ratings
Multiple Model Development Languages and Tools5.10 Ratings00 Ratings
Automated Machine Learning10.00 Ratings00 Ratings
Single platform for multiple model development10.00 Ratings00 Ratings
Self-Service Model Delivery10.00 Ratings00 Ratings
Model Deployment
Comparison of Model Deployment features of Product A and Product B
Dataiku
9.0
Ratings
5% above category average
IBM InfoSphere Information Server
-
Ratings
Flexible Model Publishing Options9.00 Ratings00 Ratings
Security, Governance, and Cost Controls9.00 Ratings00 Ratings
Data Source Connection
Comparison of Data Source Connection features of Product A and Product B
Dataiku
-
Ratings
IBM InfoSphere Information Server
10.0
Ratings
18% above category average
Connect to traditional data sources00 Ratings10.00 Ratings
Connecto to Big Data and NoSQL00 Ratings10.00 Ratings
Data Transformations
Comparison of Data Transformations features of Product A and Product B
Dataiku
-
Ratings
IBM InfoSphere Information Server
10.0
Ratings
20% above category average
Simple transformations00 Ratings10.00 Ratings
Complex transformations00 Ratings10.00 Ratings
Data Modeling
Comparison of Data Modeling features of Product A and Product B
Dataiku
-
Ratings
IBM InfoSphere Information Server
9.7
Ratings
20% above category average
Data model creation00 Ratings10.00 Ratings
Metadata management00 Ratings10.00 Ratings
Business rules and workflow00 Ratings10.00 Ratings
Collaboration00 Ratings10.00 Ratings
Testing and debugging00 Ratings9.00 Ratings
Data Governance
Comparison of Data Governance features of Product A and Product B
Dataiku
-
Ratings
IBM InfoSphere Information Server
9.5
Ratings
16% above category average
Integration with data quality tools00 Ratings10.00 Ratings
Integration with MDM tools00 Ratings9.00 Ratings
Best Alternatives
DataikuIBM InfoSphere Information Server
Small Businesses
Jupyter Notebook
Jupyter Notebook
Score 9.4 out of 10
Skyvia
Skyvia
Score 9.9 out of 10
Medium-sized Companies
Posit
Posit
Score 10.0 out of 10
dbt
dbt
Score 9.0 out of 10
Enterprises
Posit
Posit
Score 10.0 out of 10
InterSystems IRIS
InterSystems IRIS
Score 7.7 out of 10
All AlternativesView all alternativesView all alternatives
User Ratings
DataikuIBM InfoSphere Information Server
Likelihood to Recommend
10.0
(0 ratings)
10.0
(0 ratings)
Likelihood to Renew
-
(0 ratings)
8.0
(0 ratings)
Usability
10.0
(0 ratings)
-
(0 ratings)
Support Rating
9.4
(0 ratings)
-
(0 ratings)
User Testimonials
DataikuIBM InfoSphere Information Server
Likelihood to Recommend
I would recommend it because it's an amazing tool for different levels of users. From Business Analysts to Data Scientists to Managers, various employees can make use of this tool to make data-driven decisions. I'm not sure about where it would be less appropriate as I'm using it as Data Scientist and so far it pretty much caters to my need.
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You can use infosphere: -If you have multiple targets and source systems and they are different than each other. -If your infostructure is so big and unplaned well so you can't find what you want to see. -If your databases not so strong to process your data
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Pros
  • Very intuitive and easy to use UI, making a lot of types of users can collaborate with each other easily, by visualizing the same workflow.
  • Many building blocks can be reused immediately, avoid a lot of non-standard boiler plate implementation.
  • Data pre-analysis and feature engineering assistance increase the productivity as well as the efficiency of data scientists.
  • Many data connectors support wide range of data storage, from SQL, TeraData, Hadoop Hive, etc.
  • Support from research till final MaaS solution deployment.
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  • It is very strong to make transformations/data derivations
  • It is very easy to connect to various external data sources. It has an interface (stages) for each connection that simplifies the task
  • It is a stable platform. And that parallelism helps make it fast for loading, if the process is well designed
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Cons
  • Its community support is very limited at the moment
  • Complex to integrate with automation tools such as Blue Prism
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  • Lack of a strong web development environment.
  • Metadata propagation in Jobs is somewhat complex.
  • The possibility to develop jobs in Parallel and/or Server Engines is confusing.
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Likelihood to Renew
No answers on this topic
  • Scale of implementation
  • IBM techsupport
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Usability
As I have described earlier, the intuitiveness of this tool makes it great as well as the variety of users that can use this tool. Also, the plugins available in their repository provide solutions to various data science problems.
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No answers on this topic
Support Rating
The open source user community is friendly, helpful, and responsive, at times even outdoing commercial software vendors. Documentation is also top notch, and usually resolves issues without the need for human interactions. Great product design, with a focus on user experience, also makes platform use intuitive, thus reducing the need for explicit support.
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No answers on this topic
Alternatives Considered
Strictly for Data Science operations, Anaconda can be considered as a subset of Dataiku DSS. While Anaconda supports Python and R programming languages, Dataiku also provides this facility, but also provides GUI to creates models with just a click of a button. This provides the flexibility to users who do not wish to alter the model hyperparameters in greater depths. Writing codes to extract meaningful data is time consuming compared to Dataiku's ability to perform feature engineering and data transformation through click of a button.
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I particularly believe that Information Server, especially DataStage, is superior in many aspects to the Oracle Data Integrator tool. Several market analysts such as Gartner and / or Forrester better position DataStage on the Oracle solution.
Read full review
Return on Investment
  • Given its open source status, only cost is the learning curve, which is minimal compared to time savings for data exploration.
  • Platform also ease tracking of data processing workflow, unlike Excel.
  • Build-in data visualizations covers many use cases with minimal customization; time saver.
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  • Information Server can positively impact the costs of companies by increasing the productivity of development and therefore reduce their time and costs. It is estimated that DataStage can increase a developer's productivity by 40% on average.
  • Better data governance
  • Improve data quality and reduce bad data impacts
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ScreenShots