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Alteryx vs Azure Databricks comparison

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Comparison Buyer's Guide

Executive Summary

Review summaries and opinions

We asked business professionals to review the solutions they use. Here are some excerpts of what they said:
 

Categories and Ranking

Alteryx
Ranking in Data Science Platforms
4th
Average Rating
8.4
Reviews Sentiment
6.9
Number of Reviews
87
Ranking in other categories
Predictive Analytics (1st), Data Preparation Tools (1st)
Azure Databricks
Ranking in Data Science Platforms
14th
Average Rating
7.8
Reviews Sentiment
4.1
Number of Reviews
6
Ranking in other categories
No ranking in other categories
 

Featured Reviews

ManojBehera - PeerSpot reviewer
Senior Staff Cyber Security Cloud Data Architect at GE Healthcare
Automated complex ETL workflows have reduced coding effort and improved data integration
One area for improvement is in integrating mostly the data which comes from telemetry, where I can see some sort of improvisations can be made. It is a massive amount of unstructured data, and I believe Alteryx is able to handle it, but there can be some improvements. Suggestions for improvements in Alteryx include areas for increasing efficiency, particularly in processing telemetry data, which involves dealing with large volumes of unstructured data. Additionally, I believe when we use filter tools immediately after the input source, there can be slowdowns when handling massive data. The user experience of Alteryx is generally good, but there are areas for improvement from a user's perspective, particularly regarding user interface enhancements. I think there's always room for improvement, but otherwise, Alteryx has been a great tool for me. We haven't experienced significant disruptions while increasing data volumes, though I sense there could be performance issues as data grows exponentially. This is an area that could use improvement in Alteryx.
SK
Sr. Technical Specialist at Softcell Technologies Limited
Data pipelines have accelerated and support reliable analytics collaboration across teams
From our experience, Azure Databricks could be improved with simpler cluster management and more predictable cost visibility and enhanced native monitoring for large enterprise environments. We would also like richer governance features, better debugging for distributed Spark jobs, and more granular controls for workload optimization over and across multiple teams, which we have at multiple customer environments and within our organization. In day-to-day operations, troubleshooting failed Spark jobs can still be time-consuming, especially in complex distributed workloads. We would like clearer root cause diagnostics and more actionable performance recommendations within Azure Databricks. Better cost optimization insights at the job and cluster level would also help us manage large multiple team environments more efficiently.

Quotes from Members

We asked business professionals to review the solutions they use. Here are some excerpts of what they said:
 

Pros

"The drag-and-drop features are useful for data scientists who do not like to code because it is already in the system."
"It helps clean messy data and provides spatial analysis."
"Alteryx significantly reduces the time spent searching for specific information."
"It's super easy to learn how to use it — the learning curve is very small."
"The solution does a good job with data transformation."
"Alteryx allowed us to access all the data, blend it, and output it as a dashboard for the user to access any time they needed it."
"The product's initial setup phase is simple and straightforward."
"Alteryx has a good UI. We use it frequently in our projects. The tool comes with drag-and-drop features and is easy to understand for business needs. One situation where Alteryx's advanced analytics capabilities were particularly beneficial for us was during a forecasting project. Unlike Python, which requires coding, Alteryx simplifies the process significantly. With Alteryx, users can adjust parameters within the user interface without writing any code."
"The best features in Azure Databricks for me are that it's easy to use, flexible, and has fast processing, and you can use multiple data types."
"Azure Databricks gives the capability to handle a lot of big data use cases and machine learning use cases, but machine learning use cases need quite a lot of compute power, and that is where the cost spikes up."
"Azure Databricks has significantly improved our ability to process data and large data sets, and deliver analytics projects faster for our customers."
"The concept of Azure Databricks is a very good one, especially for the data products concept and idea."
"My pipelines are now significantly faster compared to older ETL tools, as what used to take over 12 to 14 hours to process 2 GB of source data in Synapse Analytics now completes within 5 hours using the Azure Databricks framework for the transformation part, illustrating a substantial improvement in performance."
"Regarding the learning curve, it is a good technology; it is the first time I am working on a cloud platform, and before that, I have not worked on any data engineering tool that is on cloud, so it is good learning."
 

Cons

"This is a proprietary tool and maybe the open source part of it could be improved."
"The screen when you are looking into your workflows and your ETL processes needs to be improved. You cannot manage it very well."
"The interface could be improved."
"The solution can be made more affordable."
"Technical support is okay and could be better. Sometimes, it takes about two to five days to hear an answer from the technical support team."
"There are a few hiccups with specific data sets and languages or formats that the data comes in. That may be a minor problem, but we can work through it. We had some issues looking at XML format in added data, but it wasn't significant."
"If there is any way to make the learning curve less steep, that would be ideal."
"I think the only area where the product lags is documentation and videos on the analytical app and the batch macro."
"From our experience, Azure Databricks could be improved with simpler cluster management and more predictable cost visibility and enhanced native monitoring for large enterprise environments."
"I have given the product a rating of six out of ten just because I do not use all of the functionalities, and I see some direction for improvement as well; also, every product has something to improve, and I have not used many features in this product."
"Lower pricing is currently my only focus and I'm still exploring Azure Databricks, so it's too early to say something, but overall, I'm saying that it is the future."
"The only concern is perhaps related to the pricing and cost that Azure Databricks incurs."
"The biggest friction point I have experienced with Azure Databricks is its cost-effectiveness; for projects with less data volume, it is advisable to use Azure Fabric services instead, as Azure Databricks may not be suitable for low volume processing."
"At this point, I cannot comment on the cost being ideal; it is on the higher side, but in the cloud-based environment, compared to on-premise, it could be far lesser in cost."
 

Pricing and Cost Advice

"I rate the solution's pricing as a ten, as it is highly priced."
"The price could be better."
"The designer has a list price of $5,995 USD."
"The seat is too expensive."
"We use the free version of the solution. There are enterprise licenses available. It cost approximately $5,000 annually. It is an expensive solution and there are additional features that cost more money."
"It can be a bit pricey, especially after the first year."
"The license is really expensive, we cannot afford to have two or three. It takes away all the budget of my area."
"Alteryx isn't extortionately expensive, but it's not cheap either."
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Top Industries

By visitors reading reviews
Financial Services Firm
19%
Manufacturing Company
9%
Construction Company
8%
Outsourcing Company
6%
No data available
 

Company Size

By reviewers
Large Enterprise
Midsize Enterprise
Small Business
By reviewers
Company SizeCount
Small Business33
Midsize Enterprise16
Large Enterprise56
By reviewers
Company SizeCount
Small Business2
Midsize Enterprise3
Large Enterprise2
 

Questions from the Community

What is the Biggest Difference Between Alteryx and IBM SPSS Modeler?
One of the differences is that with Alteryx you can use it as an ETL and analytics tool. Please connect with me directly if you want to know more.
What is the Biggest Difference Between Alteryx and IBM SPSS Modeler?
Alteryx is an extremely easy and flexible data tool, flexible in terms of drag and drop toolset and also has python, R integrations if your team requires this. It can handle over 2 billion rows of...
What is the Biggest Difference Between Alteryx and IBM SPSS Modeler?
I am not familiar with IBM SPSS Modeler, therefore, I cannot compare these two products. Regarding Alteryx I can say the following: - An excellent desktop tool for Data Prep and analytics. - Featu...
What is your experience regarding pricing and costs for Azure Databricks?
Regarding the licensing cost of Azure Databricks, it has evolved quite a lot. The compute is the biggest cost, as with any other big data solutions. The storage cost is almost minimal or negligible...
What needs improvement with Azure Databricks?
From our experience, Azure Databricks could be improved with simpler cluster management and more predictable cost visibility and enhanced native monitoring for large enterprise environments. We wou...
What is your primary use case for Azure Databricks?
Azure Databricks is our primary platform for building scalable data engineering and analytics pipelines for enterprise customers. We use it to inject, transform, and process large volumes of struct...
 

Overview

 

Sample Customers

AnalyticsIq Inc., belk, BloominBrands Inc., Cardinalhealth, Cineplex, Dairy Queen
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Find out what your peers are saying about Alteryx vs. Azure Databricks and other solutions. Updated: September 2026.
915,341 professionals have used our research since 2012.