Dataiku vs. Sigma Computing

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
Sigma
Score 9.1 out of 10
N/A
Sigma Computing headquartered in San Francisco provides a suite of data services such as code free data modeling, data search and explorating, and related BI and data visualization services.N/A
Pricing
DataikuSigma Computing
Editions & Modules
Discover
Contact sales team
Business
Contact sales team
Enterprise
Contact sales team
No answers on this topic
Offerings
Pricing Offerings
DataikuSigma
Free Trial
YesYes
Free/Freemium Version
YesNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeOptional
Additional DetailsContact us for pricing.
More Pricing Information
Community Pulse
DataikuSigma Computing
Features
DataikuSigma Computing
Platform Connectivity
Comparison of Platform Connectivity features of Product A and Product B
Dataiku
9.1
Ratings
8% above category average
Sigma Computing
-
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
Sigma Computing
-
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
Sigma Computing
-
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
Sigma Computing
-
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
Sigma Computing
-
Ratings
Flexible Model Publishing Options9.00 Ratings00 Ratings
Security, Governance, and Cost Controls9.00 Ratings00 Ratings
BI Standard Reporting
Comparison of BI Standard Reporting features of Product A and Product B
Dataiku
-
Ratings
Sigma Computing
8.9
Ratings
9% above category average
Pixel Perfect reports00 Ratings8.80 Ratings
Customizable dashboards00 Ratings9.20 Ratings
Report Formatting Templates00 Ratings8.70 Ratings
Ad-hoc Reporting
Comparison of Ad-hoc Reporting features of Product A and Product B
Dataiku
-
Ratings
Sigma Computing
8.6
Ratings
7% above category average
Drill-down analysis00 Ratings9.40 Ratings
Formatting capabilities00 Ratings8.30 Ratings
Integration with R or other statistical packages00 Ratings7.30 Ratings
Report sharing and collaboration00 Ratings9.40 Ratings
Report Output and Scheduling
Comparison of Report Output and Scheduling features of Product A and Product B
Dataiku
-
Ratings
Sigma Computing
9.1
Ratings
9% above category average
Publish to Web00 Ratings9.90 Ratings
Publish to PDF00 Ratings9.00 Ratings
Report Versioning00 Ratings9.90 Ratings
Report Delivery Scheduling00 Ratings9.80 Ratings
Delivery to Remote Servers00 Ratings7.00 Ratings
Data Discovery and Visualization
Comparison of Data Discovery and Visualization features of Product A and Product B
Dataiku
-
Ratings
Sigma Computing
6.6
Ratings
19% below category average
Pre-built visualization formats (heatmaps, scatter plots etc.)00 Ratings7.90 Ratings
Location Analytics / Geographic Visualization00 Ratings5.60 Ratings
Predictive Analytics00 Ratings6.20 Ratings
Best Alternatives
DataikuSigma Computing
Small Businesses
Jupyter Notebook
Jupyter Notebook
Score 9.4 out of 10
BrightGauge
BrightGauge
Score 9.1 out of 10
Medium-sized Companies
Posit
Posit
Score 10.0 out of 10
Reveal
Reveal
Score 10.0 out of 10
Enterprises
Posit
Posit
Score 10.0 out of 10
Kyvos Semantic Intelligence Layer
Kyvos Semantic Intelligence Layer
Score 9.9 out of 10
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User Ratings
DataikuSigma Computing
Likelihood to Recommend
10.0
(0 ratings)
8.1
(0 ratings)
Likelihood to Renew
-
(0 ratings)
10.0
(0 ratings)
Usability
10.0
(0 ratings)
7.6
(0 ratings)
Availability
-
(0 ratings)
8.2
(0 ratings)
Performance
-
(0 ratings)
9.1
(0 ratings)
Support Rating
9.4
(0 ratings)
10.0
(0 ratings)
Implementation Rating
-
(0 ratings)
9.1
(0 ratings)
Configurability
-
(0 ratings)
7.3
(0 ratings)
Ease of integration
-
(0 ratings)
9.1
(0 ratings)
Product Scalability
-
(0 ratings)
8.2
(0 ratings)
Vendor post-sale
-
(0 ratings)
7.3
(0 ratings)
User Testimonials
DataikuSigma Computing
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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Scenarios where Sigma Computing is well suited: - Data Reporting and Visualisation : It is suitable for dashboards that integrate data from multiple back-office systems - Search and Filtering Capabilities: It provides a robust platform for searching through datasets and visualisations. Scenarios where Sigma Computing is less appropriate: Handling of null values and dynamic table adjustments
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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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  • Allows end users to easily dive into the data without having direct access to the table in our database management software.
  • Can easily turnaround dashboards that are detailed and visually pleasing.
  • Sigma is intuitive and as new features are rolled out it is easy to adopt and incorporate them into new and existing dashboards.
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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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  • Viewer level license is quite limited. These users can't download data or even add filters on datasets. Something to keep in mind.
  • Directly querying the underlying data warehouse will lead to increased usage. Not a big deal on something like Redshift, but your Snowflake consumption will increase, potentially by a lot.
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Likelihood to Renew
No answers on this topic
Because we are very satisfied with the product and would most likely renew because of the services it provides. It is a tool that you bring into your organization and let it change the way you analyze your data, present your data and share you date within the Respective teams
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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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It has a clean and modern interface. However, it is not completely intuitive. I think it would be better and easier to navigate with more Windows style drop down menus and/or tabls. There is a significant learning curve, but that may be due in part to the technical nature of this type of software tool.
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Reliability and Availability
No answers on this topic
Yes, as long as you don’t conduct user error sigma is always up and running and waiting for you to complete your dashboards
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Performance
No answers on this topic
It depends, it loads quickly for smaller dashboards but when loading larger amounts of data it takes more time to do so
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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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They are very friendly and informative. They are quick in resolving our queries and help us understand very minute things as well. They are quick in creating feature tickets based on our custom requirements, and they would also create a bug ticket if there is any discrepancy and get that checked on time.
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Implementation Rating
No answers on this topic
Was not involved in implementation
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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 am not an expert in any of these, though from my brief exposure to Looker it felt like a steeper learning curve, more appropriate to companies with dedicated and skilled BI engineers, whereas Sigma (and Tableau, and Looker Studio) offer a quicker and more intuitive interface for smaller companies like ours without dedicated BI resources on staff.
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Scalability
No answers on this topic
It is a cloud service offering that is able to expand based on your usage
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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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  • Monitoring health of cloud platform has allowed the company to anticipate issues before they affect customers – Sigma prompted us building a canary monitoring process that provides customer container health.
  • Customer success has used an activity report to discover customers running runaway processes that they were unaware of, creating an alert to contact the customer and prevent an embarrassing situation.
  • Customer success uses the activity report to prompt conversations regarding increases or declines in behavior that led to increasing contract limits or addressing churn concerns.
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ScreenShots