Overview
ProductRatingMost Used ByProduct SummaryStarting Price
CloudStack
Score 9.6 out of 10
N/A
CloudStack is a cloud management platform, from Apache.N/A
Datadog
Score 8.8 out of 10
N/A
Datadog is a monitoring service for IT, Dev and Ops teams who write and run applications at scale, and want to turn the massive amounts of data produced by their apps, tools and services into actionable insight.
$18
per month per host
Pricing
Apache CloudStackDatadog
Editions & Modules
No answers on this topic
Log Management
$1.27
per month (billed annually) per host
Infrastructure
$15.00
per month (billed annually) per host
Standard
$18
per month per host
Enterprise
$27
per month per host
DevSecOps Pro
$27
per month per host
APM
$31.00
per month (billed annually) per host
DevSecOps Enterprise
$41
per month per host
Offerings
Pricing Offerings
CloudStackDatadog
Free Trial
NoYes
Free/Freemium Version
NoYes
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeOptional
Additional DetailsDiscount available for annual pricing. Multi-Year/Volume discounts available (500+ hosts/mo).
More Pricing Information
Community Pulse
Apache CloudStackDatadog
Features
Apache CloudStackDatadog
Monitoring Tasks
Comparison of Monitoring Tasks features of Product A and Product B
Apache CloudStack
-
Ratings
Datadog
7.9
2 Ratings
7% below category average
Remote monitoring00 Ratings8.22 Ratings
Network device monitoring00 Ratings7.72 Ratings
Multiple Server Monitoring00 Ratings7.72 Ratings
Multi-device monitoring00 Ratings7.72 Ratings
Automated alerts and notifications00 Ratings8.22 Ratings
Management Tasks
Comparison of Management Tasks features of Product A and Product B
Apache CloudStack
-
Ratings
Datadog
6.1
1 Ratings
12% below category average
Patch Management00 Ratings7.31 Ratings
Service configuration management00 Ratings6.41 Ratings
Software and hardware inventory00 Ratings5.51 Ratings
Policy-based automation00 Ratings5.51 Ratings
Reporting
Comparison of Reporting features of Product A and Product B
Apache CloudStack
-
Ratings
Datadog
8.2
2 Ratings
3% above category average
Performance data reports00 Ratings8.22 Ratings
Customizable reporting00 Ratings7.72 Ratings
Data visualization00 Ratings8.62 Ratings
Risk analysis00 Ratings8.22 Ratings
Security
Comparison of Security features of Product A and Product B
Apache CloudStack
-
Ratings
Datadog
6.7
1 Ratings
9% below category average
Data backup and recovery00 Ratings6.41 Ratings
Antivirus and malware management00 Ratings7.31 Ratings
Administrator access control00 Ratings6.41 Ratings
Best Alternatives
Apache CloudStackDatadog
Small Businesses
VMware Cloud Director
VMware Cloud Director
Score 9.6 out of 10
Amazon CloudWatch
Amazon CloudWatch
Score 7.6 out of 10
Medium-sized Companies
IBM Turbonomic
IBM Turbonomic
Score 8.6 out of 10
ManageEngine Site24x7
ManageEngine Site24x7
Score 10.0 out of 10
Enterprises
VMware Cloud Director
VMware Cloud Director
Score 9.6 out of 10
ManageEngine Site24x7
ManageEngine Site24x7
Score 10.0 out of 10
All AlternativesView all alternativesView all alternatives
User Ratings
Apache CloudStackDatadog
Likelihood to Recommend
8.8
(3 ratings)
8.9
(65 ratings)
Likelihood to Renew
-
(0 ratings)
4.3
(2 ratings)
Usability
-
(0 ratings)
8.7
(44 ratings)
Support Rating
-
(0 ratings)
5.0
(7 ratings)
Implementation Rating
-
(0 ratings)
1.0
(1 ratings)
User Testimonials
Apache CloudStackDatadog
Likelihood to Recommend
Apache
Whether our clients are VPS hosting providers or operate private cloud infrastructure for their internal enterprise requirements, CloudStack provides solutions in an easy to implement and operate way that is simple to provide training for. The learning curve for our customesr adopting CloudStack for the management of their cloud infrastructure is shallow, enabling our clients to come up to speed quickly without having to outsource their administrative functions any longer than necessary
Read full review
Datadog
If I want to see what customers are doing wrong in their sessions, we can do that easily. On the other hand, if we want to know the payload in the API calls, that is the area where Datadog can improve.
Read full review
Pros
Apache
  • Low-cost solution
  • Open-source
  • Engaged community
  • Solid documentation
  • Is a very reliable tool for orchestration with good usability
Read full review
Datadog
  • The thing which Datadog does really well, one of them are its broad range of services integrations and features which makes it one step observability solution for all. We can monitor all types of our application, infrastructure, hosts, databases etc with Datadog.
  • Its custom dashboard feature which helps us to visualize the data in a better way . It supports different types of charts through those charts we can create our dashboard more attractive.
  • Its AI powered alerting capability though that we can easily identify the root cause and also it has a low noise alerting capability which means it correlated the similar type of issues.
Read full review
Cons
Apache
  • Sometimes you can find undocumented bugs that can compromise the entire infrastructure.
  • [If] you don't have an official support channel, you have try to find out the source of the problem by yourself.
  • Volume size limitation. Other players allow you to create volumes up to 64TB while ACS allows only 2TB volumes
Read full review
Datadog
  • In my experience, .NET Tracing Agent caused severe and untraceable performance issues
  • In my opinion, usage and billing structures were opaque and surprising
  • In my experience, documentation was incomplete, contradicting or sometimes completely wrong, even for common infrastructure (AWS Fargate)
  • I feel support was unhelpful at times, and bounced us back and forth to other teams
  • In my opinion, multiple methods of sample rate control were ineffective, adding to excessive usage and cost
Read full review
Likelihood to Renew
Apache
No answers on this topic
Datadog
Its a one stop solution for most processes and does reduce cost overall. This does in turn help teams communicate in a much more efficient way, also RUM is a game changer for any quality product; we use RUM alot for debugging and reverse engineering issues. Reports and coverage has been a plus, it all has helped us a lot in our processes.
Read full review
Usability
Apache
No answers on this topic
Datadog
There are so many features that it can be hard to figure out where you need to go for your own use case. For example, RUM monitoring us buried in a "Digital Experience" sidebar setting when this is one of our key use cases that I sometimes struggle to find in the application. It appears that ECS + Fargate monitoring was recently released which is great because we had to build a lambda reporting solution for ephemeral task monitoring. But this new feature was never on my radar until I starting clicking around the application.
Read full review
Support Rating
Apache
No answers on this topic
Datadog
The support team usually gets it right. We did have a rather complicate issue setting up monitoring on a domain controller. However, they are usually responsive and helpful over chat. The downside would be I don’t think they have any phone support. If that is important to you this might not be a good fit.
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Implementation Rating
Apache
No answers on this topic
Datadog
Documentation was difficult to work through, rollout was catastrophic (completely outage)
Read full review
Alternatives Considered
Apache
The University, my first large implementation, had a big issue with 149 small data centers spread on São Paulo State, this data centers costs to university were very high, the consolidation idea in two data centers were awesome, but were worried with the management, so we adopted ACS to management of all 576 physical hosts. Now a days the university is delivering IaaS for all staff, students, teachers and researchers, they are using these resources to delivery services to their clients and have a great results in research area
Read full review
Datadog
In terms of usability, I’ve found Datadog significantly more approachable and powerful compared to Elasticsearch, especially for day-to-day operational monitoring. Datadog offers a much more cohesive, user-friendly interface out of the box, with built-in support for metrics, logs, tracing, alerting, and dashboards—all tightly integrated. In contrast, Elasticsearch often felt barebones and required considerable setup and additional tooling (like Kibana or Logstash) to reach the same level of functionality.
While Elasticsearch is excellent for high-volume log ingestion and full-text search, it lacks the depth of features and real-time visualization capabilities that Datadog provides natively. The query language in Datadog is also quite usable and comparable for my needs—mainly filtering and aggregating logs and metrics—without needing to learn Elasticsearch's more complex DSL. Overall, Datadog saves our team time and effort, whereas Elasticsearch often felt like building a monitoring system from scratch. The all-in-one nature of Datadog, despite its complexity, is ultimately more efficient and scalable for our use case.
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Return on Investment
Apache
  • Low-cost solution (free and open-source)
  • More than 2000 users using it simultaneously
  • Stable and reliable
  • Up and running since 2012
Read full review
Datadog
  • Saved us (time & money) from developing our own monitoring utilities that would pale in comparison
  • Alerts allow us to remedy issues before our customers even know about them
  • Tracking resource usage over time allows us to better plan for future needs, before it becomes a pain-point.
Read full review
ScreenShots

Datadog Screenshots

Screenshot of the out-of-the-box and customizable monitoring dashboards.Screenshot of Datadog's collaboration features, where users can discuss issues in-context with production data, annotate changes and notify their teams, see who responded to that alert before, and discover what was done to fix it.Screenshot of where Datadog unifies traces, metrics, and logs—the three pillars of observability.Screenshot of some of Datadog's 400+ built-in integrations.Screenshot of Datadog's Service Map, which decomposes an application into all its component services and draws the observed dependencies between these services in real timeScreenshot of centralized log data, pulled from any source.