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.
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IBM InfoSphere Information Server
Score 8.0 out of 10
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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.
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Pricing
Dataiku
IBM InfoSphere Information Server
Editions & Modules
Discover
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Business
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Enterprise
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Offerings
Pricing Offerings
Dataiku
IBM InfoSphere Information Server
Free Trial
Yes
No
Free/Freemium Version
Yes
No
Premium Consulting/Integration Services
No
No
Entry-level Setup Fee
No setup fee
No setup fee
Additional Details
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More Pricing Information
Community Pulse
Dataiku
IBM InfoSphere Information Server
Features
Dataiku
IBM 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 Sources
10.00 Ratings
00 Ratings
Extend Existing Data Sources
10.00 Ratings
00 Ratings
Automatic Data Format Detection
10.00 Ratings
00 Ratings
MDM Integration
6.50 Ratings
00 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
Visualization
9.90 Ratings
00 Ratings
Interactive Data Analysis
10.00 Ratings
00 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 Enrichment
10.00 Ratings
00 Ratings
Data Transformations
10.00 Ratings
00 Ratings
Data Encryption
10.00 Ratings
00 Ratings
Built-in Processors
10.00 Ratings
00 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 Tools
5.10 Ratings
00 Ratings
Automated Machine Learning
10.00 Ratings
00 Ratings
Single platform for multiple model development
10.00 Ratings
00 Ratings
Self-Service Model Delivery
10.00 Ratings
00 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 Options
9.00 Ratings
00 Ratings
Security, Governance, and Cost Controls
9.00 Ratings
00 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 sources
00 Ratings
10.00 Ratings
Connecto to Big Data and NoSQL
00 Ratings
10.00 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 transformations
00 Ratings
10.00 Ratings
Complex transformations
00 Ratings
10.00 Ratings
Data Modeling
Comparison of Data Modeling features of Product A and Product B
Dataiku
-
Ratings
IBM InfoSphere Information Server
9.7
Ratings
19% above category average
Data model creation
00 Ratings
10.00 Ratings
Metadata management
00 Ratings
10.00 Ratings
Business rules and workflow
00 Ratings
10.00 Ratings
Collaboration
00 Ratings
10.00 Ratings
Testing and debugging
00 Ratings
9.00 Ratings
Data Governance
Comparison of Data Governance features of Product A and Product B
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.
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
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.
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.
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.
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.
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.