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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    Elasticsearch

    Score8.5 out of 10
    N/AElasticsearch is an enterprise search tool from Elastic in Mountain View, California.

    $16

    per month

    ScienceLogic AI Platform

    Score8.2 out of 10
    Enterprise companies (1,001+ employees)
    ScienceLogic provides a unified IT Operations platform designed to manage operational workflows using high-fidelity Telemetry Data and explainable automation. The ScienceLogic AI Platform is deployable across On-Premises, Cloud, and Hybrid Environments. The platform consolidates monitoring tools to provide Observability and enables engineers to automate manual processes using Machine Learning capabilities. The platform utilizes automation for Closed-Loop Remediation and provides insights…N/A
    Pricing
    ElasticsearchScienceLogic AI Platform
    Editions & Modules
    Standard
    $16.00
    per month
    Gold
    $19.00
    per month
    Platinum
    $22.00
    per month
    Enterprise
    Contact Sales
    No answers on this topic
    Offerings
    Pricing Offerings
    ElasticsearchScienceLogic AI Platform
    Free Trial
    NoNo
    Free/Freemium Version
    NoNo
    Premium Consulting/Integration Services
    NoYes
    Entry-level Setup FeeNo setup feeRequired
    Additional Details—ScienceLogic SL1 offers four tiers: SL1 Advanced – Application Health, Automated Troubleshooting and Remediation Workflows SL1 Base – Infrastructure Monitoring, Topology & Event Correlation SL1 Premium – AI/ML-driven Analytics, Low-Code Automated Workflow Authoring SL1 Standard – Infrastructure Monitoring – with Agents, Business Services, Incident Automation, CMDB Synchronization, Behavioral Correlation
    More Pricing Information
    Community Pulse
    ElasticsearchScienceLogic AI Platform
    Considered Both Products
    Elastic
    No answer on this topic
    ScienceLogic
    Chose ScienceLogic AI Platform
    ScienceLogic adds easy customization through the "power packs" that have carefully designed applications specific to certain vendors/models
    Incentivized
    Chose ScienceLogic AI Platform
    These are two different type's of products really that cross over each other at some intersections. Dynatrace is a Deep Diving monitoring tool as ScienceLogic monitors what can be seen on the surface, like logs, cpu memory, cpu and memory would be a crossover, and ScienceLogic …
    Incentivized
    Chose ScienceLogic AI Platform
    The coverage and ease for what we need is just better. Most of the other solutions are just point tools that don't bring many functions together or are missing pieces to be successful.
    Incentivized
    Key User Insights
    Would buy again
    82%
    Would buy again
    14 Answers
    87%
    Would buy again
    81 Answers
    Delivers good value for the price
    100%
    Delivers good value for the price
    16 Answers
    91%
    Delivers good value for the price
    71 Answers
    Happy with the feature set
    100%
    Happy with the feature set
    17 Answers
    92%
    Happy with the feature set
    86 Answers
    Lived up to sales and marketing promises
    100%
    Lived up to sales and marketing promises
    13 Answers
    85%
    Lived up to sales and marketing promises
    44 Answers
    Implementation went as expected
    87%
    Implementation went as expected
    13 Answers
    81%
    Implementation went as expected
    58 Answers
    Features
    ElasticsearchScienceLogic AI Platform
    AIOps Features
    Comparison of AIOps Features features of Elasticsearch and ScienceLogic AI Platform
    Feature
    Elasticsearch
    -
    Ratings
    ScienceLogic AI Platform
    7.6
    26 Ratings
    0% below category average
    Monitoring and Alerting00 Ratings8.225 Ratings
    Performance Analytics00 Ratings7.826 Ratings
    Incident Management00 Ratings6.626 Ratings
    Service Desk Integration00 Ratings7.525 Ratings
    Root Cause Analysis00 Ratings7.721 Ratings
    Capacity Planning Tool00 Ratings7.222 Ratings
    Configuration and Change Management00 Ratings7.723 Ratings
    Automated Remediation00 Ratings7.620 Ratings
    Collaboration and Communication00 Ratings8.020 Ratings
    Threat Intelligence00 Ratings7.319 Ratings
    Best Alternatives
    ElasticsearchScienceLogic AI Platform
    Small Businesses
    Apache Solr
    Score7.9 out of 10
    No answers on this topic
    Medium-sized Companies
    IBM Watson Discovery
    Score9 out of 10
    No answers on this topic
    Enterprises
    Amazon CloudSearch
    Score8.5 out of 10
    ignio AIOps
    Score8.1 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    ElasticsearchScienceLogic AI Platform
    Likelihood to Recommend
    9.0
    (48 ratings)
    8.0
    (228 ratings)
    Likelihood to Renew
    10.0
    (1 ratings)
    8.5
    (24 ratings)
    Usability
    10.0
    (1 ratings)
    9.6
    (15 ratings)
    Availability
    -
    (0 ratings)
    9.2
    (14 ratings)
    Performance
    -
    (0 ratings)
    8.2
    (14 ratings)
    Support Rating
    7.8
    (9 ratings)
    6.6
    (20 ratings)
    In-Person Training
    -
    (0 ratings)
    8.8
    (6 ratings)
    Online Training
    -
    (0 ratings)
    7.7
    (8 ratings)
    Implementation Rating
    9.0
    (1 ratings)
    6.4
    (99 ratings)
    Configurability
    -
    (0 ratings)
    10.0
    (7 ratings)
    Ease of integration
    -
    (0 ratings)
    8.0
    (15 ratings)
    Product Scalability
    -
    (0 ratings)
    8.0
    (1 ratings)
    Vendor post-sale
    -
    (0 ratings)
    9.1
    (7 ratings)
    Vendor pre-sale
    -
    (0 ratings)
    8.3
    (7 ratings)
    User Testimonials
    ElasticsearchScienceLogic AI Platform
    Likelihood to Recommend
    Elastic
    Elasticsearch is a really scalable solution that can fit a lot of needs, but the bigger and/or those needs become, the more understanding & infrastructure you will need for your instance to be running correctly. Elasticsearch is not problem-free - you can get yourself in a lot of trouble if you are not following good practices and/or if are not managing the cluster correctly. Licensing is a big decision point here as Elasticsearch is a middleware component - be sure to read the licensing agreement of the version you want to try before you commit to it. Same goes for long-term support - be sure to keep yourself in the know for this aspect you may end up stuck with an unpatched version for years.
    Incentivized
    Read full review
    ScienceLogic
    For Windows, the issue is in higher resource consumption related to WinRM monitoring, which provides better options then the SNMP monitoring, which on the other hand is less resource intensive. The problem is also with support for OS with other than English language.
    Incentivized
    Read full review
    Pros
    Elastic
    • As I mentioned before, Elasticsearch's flexible data model is unparalleled. You can nest fields as deeply as you want, have as many fields as you want, but whatever you want in those fields (as long as it stays the same type), and all of it will be searchable and you don't need to even declare a schema beforehand!
    • Elastic, the company behind Elasticsearch, is super strong financially and they have a great team of devs and product managers working on Elasticsearch. When I first started using ES 3 years ago, I was 90% impressed and knew it would be a good fit. 3 years later, I am 200% impressed and blown away by how far it has come and gotten even better. If there are features that are missing or you don't think it's fast enough right now, I bet it'll be suitable next year because the team behind it is so dang fast!
    • Elasticsearch is really, really stable. It takes a lot to bring down a cluster. It's self-balancing algorithms, leader-election system, self-healing properties are state of the art. We've never seen network failures or hard-drive corruption or CPU bugs bring down an ES cluster.
    Incentivized
    Read full review
    ScienceLogic
    • Best overall coverage of montioring different technologies.
    • Easy to use in any environment
    • Customizable being able to generate your own reports, dashboards, DA's, RBA's, etc.
    • Have very good out of the box integrations with other monitoring solutions such as ServiceNow
    • Always improving and regularly releasing new versions and upgrades to the system/DA's.
    • Interactive community
    Incentivized
    Read full review
    Cons
    Elastic
    • Joining data requires duplicate de-normalized documents that make parent child relationships. It is hard and requires a lot of synchronizations
    • Tracking errors in the data in the logs can be hard, and sometimes recurring errors blow up the error logs
    • Schema changes require complete reindexing of an index
    Incentivized
    Read full review
    ScienceLogic
    • Dashboards are quite old and are of Iron age. Need to have AP2 dashboards only instead of AP1 and consistent new design across all functionalities.
    • Reporting is not improved since Y2020 and need to revamp completely. Need to integrate Dashboards and Reporting. PowerBI Like functionality to be given OOTB. Reports should be extracted in Excel, PDF, HTML and should be heavily automated.
    • Create and Open APIs for basic and advanced monitoring data extraction.
    • Topology based Event Correlation and Suppression should be improved drastically. Need to identify critical network interfaces based on Topology and monitor them. Basic customization of Dynamic App and/or Powerpack to exclude/include certain metrics/events to be permitted OOTB instead of customizations.
    • Integration with ServiceNow to be improved and to be taken to next level. Automation Powerpack should be made available OOTB as part of base product and to be priced attractively.
    • Take product to next level where we can monitor actual impacted IT or Business Service instead of metrics and events BSM and Topology map to be auto discovered and identify the network dependencies and alternate paths automatically instead of manual creation of BSM.
    Read full review
    Likelihood to Renew
    Elastic
    We're pretty heavily invested in ElasticSearch at this point, and there aren't any obvious negatives that would make us reconsider this decision.
    Incentivized
    Read full review
    ScienceLogic
    It is simply because of all the best possible autonomy solutions it is providing and getting better day by day. Using AI and Devops along with handy automation, The monitoring and Management of devices becomes much easier and the way it is growing in all the aspects is one the best reasons too. Evolution of the SL1 platform in the autonomy monitoring and management is quite appreciable.
    Incentivized
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    Usability
    Elastic
    To get started with Elasticsearch, you don't have to get very involved in configuring what really is an incredibly complex system under the hood. You simply install the package, run the service, and you're immediately able to begin using it. You don't need to learn any sort of query language to add data to Elasticsearch or perform some basic searching. If you're used to any sort of RESTful API, getting started with Elasticsearch is a breeze. If you've never interacted with a RESTful API directly, the journey may be a little more bumpy. Overall, though, it's incredibly simple to use for what it's doing under the covers.
    Incentivized
    Read full review
    ScienceLogic
    The core functions are there.
    The complexity is due to the complexity of the space.
    The score is based on comfort (I no longer notice the legacy UI) and the promise that I see in the 8.12 Unified UI (a vast improvement).
    It is also based on the fact that with 8.12, you can now do everything in the new UI but you still have the legacy UI as a fallback (which should now be unnecessary for new installations)
    Incentivized
    Read full review
    Reliability and Availability
    Elastic
    No answers on this topic
    ScienceLogic
    SL is always there and online when you need to get info from it. The only times when SL was not available in our own data center, was when network links from out side of the data center was down and those links were not in our controll. Having a central database and people accessing it all over the world, may put a bit of constarin on the performance of the dashboards when reports gets generated, but that is far and few n between.
    Incentivized
    Read full review
    Performance
    Elastic
    No answers on this topic
    ScienceLogic
    SceinceLogic SL1 architecture helps the platform to give a top-notch performance in every respect, Data collection to reporting happens very smoothly. With the new user interface pages load much faster. Individual appliances carrying the individual task ensure things are working without lag. Integration with ticketing tool(SNOW) is well managed by the ScienceLogic, no issue or much delay has been observed while interacting with an external tool.
    Incentivized
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    Support Rating
    Elastic
    We've only used it as an opensource tooling. We did not purchase any additional support to roll out the elasticsearch software. When rolling out the application on our platform we've used the documentation which was available online. During our test phases we did not experience any bugs or issues so we did not rely on support at all.
    Incentivized
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    ScienceLogic
    So far, it's good as part of my overall experience, except for a couple of use cases. The support team is well knowledgeable, has technical sound, and is efficient. When support escalates to engineering, the issue gets stuck and takes months to resolve.
    Incentivized
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    In-Person Training
    Elastic
    No answers on this topic
    ScienceLogic
    It was good, Do the online training first and understand it and you will get the most out of the in-person training that way. This also takes you to an advanced level which is very good and the training as been overhauled once again along with new product coming in such as Zebruim / Skylar, worth going through again if it a while back that you first did this.
    Incentivized
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    Online Training
    Elastic
    No answers on this topic
    ScienceLogic
    There are a lot of educational materials and courses on the SL1 training site (Litmos university). However the recording quality is sometimes not very good - screen resolution is low. There is a lack of professional rather than user-oriented documents and there are mistakes in documentation and education is not well structured.
    Incentivized
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    Implementation Rating
    Elastic
    Do not mix data and master roles. Dedicate at least 3 nodes just for Master
    Incentivized
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    ScienceLogic
    Implementation is smooth if we are to just support the out-of-the-box features available in ScienceLogic. For any custom requirement, having to go to SL1 Professional Services is the worst part of procuring this suite. And more often than not, SL1 Professional Services also ask to raise feature request. So, you subscribe to Professional Services to only hear back from them that "This feature is not supported and needs to have a separate feature request". At times frustrating.
    Incentivized
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    Alternatives Considered
    Elastic
    As far as we are concerned, Elasticsearch is the gold standard and we have barely evaluated any alternatives. You could consider it an alternative to a relational or NoSQL database, so in cases where those suffice, you don't need Elasticsearch. But if you want powerful text-based search capabilities across large data sets, Elasticsearch is the way to go.
    Incentivized
    Read full review
    ScienceLogic
    Science logic SL1 is so user friendly and it's really easy to navigate between function. I would recommend Sciene logic SL1 to all of them who are looking for really useful monitoring tool and expecting easy way of managing it.
    Incentivized
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    Scalability
    Elastic
    No answers on this topic
    ScienceLogic
    Our deployment model is vastly different from product expectations. Our global / internal monitoring foot print is 8 production stacks in dual data centers with 50% collection capacity allocated to each data center with minimal numbers of collection groups. General Collection is our default collection group. Special Collection is for monitoring our ASA and other hardware that cannot be polled by a large number of IP addresses, so this collection group is usually 2 collectors). Because most of our stacks are in different physical data centers, we cannot use the provided HA solution. We have to use the DR solution (DRBD + CNAMEs). We routinely test power in our data centers (yearly). Because we have to use DR, we have a hand-touch to flip nodes and change the DNS CNAME half of the times when there is an outage (by design). When the outage is planned, we do this ahead of the outage so that we don't care that the Secondary has dropped away from the Primary. Hopefully, we'll be able to find a way to meet our constraints and improve our resiliency and reduce our hand-touch in future releases. For now, this works for us and our complexity. (I hear that the HA option is sweet. I just can't consume that.)
    Incentivized
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    Return on Investment
    Elastic
    • We have had great luck with implementing Elasticsearch for our search and analytics use cases.
    • While the operational burden is not minimal, operating a cluster of servers, using a custom query language, writing Elasticsearch-specific bulk insert code, the performance and the relative operational ease of Elasticsearch are unparalleled.
    • We've easily saved hundreds of thousands of dollars implementing Elasticsearch vs. RDBMS vs. other no-SQL solutions for our specific set of problems.
    Incentivized
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    ScienceLogic
    • Once a powerpack is developed and configured for a device for one customer, it is easy to deploy the same powerpack on a second customer estate and configure specifically for that customer without having to reinvent the powerpack. This saves time and therefore money.
    • Once the customer estate tuning is complete, the Operations team have come trust the alerts. This is especially true when transient or self-correcting alerts are automatically cleared without ops team involvement, but a record is still available for audit and debugging purposes. This saves time and therefore money.
    • When setup correctly, it provides good visibility into applications, devices and whole customer estates. This saves time and therefore money when issues arise.
    Incentivized
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    ScreenShots

    ScienceLogic AI Platform Screenshots

    Screenshot of Unified Observability and Contextual IntelligenceScreenshot of Relationship Mapping & Service VisibilityScreenshot of ITSM and Collaboration IntegrationsScreenshot of Low-Code Workflow BuilderScreenshot of Dynamic Application DevelopmentScreenshot of Executive Overview Dashboard