Azure Data Lake Analytics vs. Hashboard (discontinued)

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
Azure Data Lake Analytics
Score 8.3 out of 10
N/A
Microsoft's Azure Data Lake Analytics is a BI service for processing big data jobs without consideration for infrastructure.N/A
Hashboard (discontinued)
Score 8.0 out of 10
N/A
Hashboard (formerly Glean.io) was lightweight, business intelligence tool. It was acquired by Hex in 2025, and former users are encouraged to move to Hex.N/A
Pricing
Azure Data Lake AnalyticsHashboard (discontinued)
Editions & Modules
No answers on this topic
No answers on this topic
Offerings
Pricing Offerings
Azure Data Lake AnalyticsHashboard (discontinued)
Free Trial
NoNo
Free/Freemium Version
NoNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeNo setup fee
Additional Details15% discount for yearly pricing.
More Pricing Information
Community Pulse
Azure Data Lake AnalyticsHashboard (discontinued)
Considered Both Products
Azure Data Lake Analytics
Chose Azure Data Lake Analytics
Azure Data Lake simplifies extensive data analysis. It runs Hadoop, HDInsight, and Data Lakes, and even complex queries run smoothly and quickly. We write queries to transform data and extract insights instead of configuring hardware. It can handle any size job by adjusting the …
Chose Azure Data Lake Analytics
Compared to Databricks which we have fully implemented and all teams use, Azure Data Lake Analytics was first pushed on our engineering team from the Data Science group pretty much from familiarity. Once we did a proof of technology, we found it to natively have the better …
Chose Azure Data Lake Analytics
We did some research about Alibaba Cloud Data Lake Analytics and even being cheaper than Azure Data Lake Analytics, we decided to go for the second one once we noticed they have more features and better documentation. Another thing we considered during this process was the fact …
Chose Azure Data Lake Analytics
ADL Analytics supports big data such as Hadoop, HDInsight, Data lakes. Usually, a traditional data warehouse stores data from various data sources, transform data into a single format and analyze for decision making. Developers use complex queries that might take longer hours …
Chose Azure Data Lake Analytics
Both of the products selected are very good at what they do, but data lake analytics is able to bundle everything else within our preexisting data lake, which is a very big [deciding] factor.
Hashboard (discontinued)
Chose Hashboard (discontinued)
Glean.io provided the customisable packages as per the user licences and data storage required. We are a growing organisation and this flexibility helped arrive at decision to use Glean.io
The user onboarding is very easy with Glean.io. There were no extra resources required to …
Chose Hashboard (discontinued)
For simple use cases, Glean.io is a lightweight alternative to SAP Analytics Cloud. Provisioning, testing, and documentation are easier and less intimidating in the Glean.io case. Thus, it is easy to explore without firing up the sales machinery of the big corporates. Thus, the …
Best Alternatives
Azure Data Lake AnalyticsHashboard (discontinued)
Small Businesses

No answers on this topic

BrightGauge
BrightGauge
Score 9.1 out of 10
Medium-sized Companies

No answers on this topic

Reveal
Reveal
Score 10.0 out of 10
Enterprises

No answers on this topic

Kyvos Semantic Intelligence Layer
Kyvos Semantic Intelligence Layer
Score 9.9 out of 10
All AlternativesView all alternativesView all alternatives
User Ratings
Azure Data Lake AnalyticsHashboard (discontinued)
Likelihood to Recommend
8.7
(0 ratings)
7.5
(0 ratings)
User Testimonials
Azure Data Lake AnalyticsHashboard (discontinued)
Likelihood to Recommend
For us we have an enterprise of SQL users at all skill levels, and this product is very SQL friendly and extremely fast in creation of data aggregates and analysis. If you are an Azure storage user, considering using Lake Analytics over top of your blob or any other storage just adds complementary services and functions native to your existing architecture.
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For the scenario, we used Glean.io which we used the software to establish a database connection and build live dashboards on the data on this database. This was a very simple use case to explore the capabilities of the software. In this use case, it works very smoothly and well. Further, we looked into similar use cases using the data ops features to achieve data provisioning with code to have more control. This was a nice way to support data engineers for sure. I would say that - for our use cases - the UI-based set up does the job. It is nice to have more advanced options with data ops. But they are probably over the top for our use cases. I would say it is worth it though to explore and figure out which degree of control fits your use case best.
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Pros
  • It combines big data.
  • Monitors and alerts are helpful.
  • Report visualization relies on analytics.
  • It is compatible with Power BI services for report generation.
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  • Workflow is easy and clear due to clean and state of the art interface
  • Model creation is easy
  • Possibility for custom SQL code for database connection is very helpful
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Cons
  • There's a bit of bias towards cloud with ADL Analytics. Depending upon a company's infra strategy and investment plans, there are some challenges with migration and integeration.
  • Not worth the time/effort/money if the organization doesn't have "Volume" of data. Cost effective only when daily loads exceed around 1million.
  • While training materials are available online, Adoption rate - Yet to pick up.
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  • Querying has to be done by users only. There can be ways to automate querying using templates
  • Not able to clearly check the query run time
  • The customer support team can be little more proactive while communicating any changes and resolving any queries
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Alternatives Considered
Azure Data Lake simplifies extensive data analysis. It runs Hadoop, HDInsight, and Data Lakes, and even complex queries run smoothly and quickly. We write queries to transform data and extract insights instead of configuring hardware. It can handle any size job by adjusting the power. Azure's servers, networking, and data entry are fantastic. It provides security and assured data access.
Read full review
Glean.io provided the customisable packages as per the user licences and data storage required. We are a growing organisation and this flexibility helped arrive at decision to use Glean.io The user onboarding is very easy with Glean.io. There were no extra resources required to integrate with our system and it was done in couple of days only.
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Return on Investment
  • Since we have implemented this solution, we have been more able to follow what is going on in our process and sells.
  • We are also sparing some money by comparing the costs now against the costs we had on-premise.
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  • Optimised the DB management team by 30%
  • Reduce in data visualisation dashboards TAT by 50%
  • Increase in revenues and savings by 20%
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ScreenShots