
JS7 JobScheduler, an Open Source Workload Automation System, is designed for performance and resilience. JS7 implements state-of-the-art security standards. It offers unlimited performance for parallel executions of jobs and workflows.
JS7 provides cross-platform job execution and managed file transfer. It supports complex dependencies without the need for coding. The JS7 REST-API allows automation of inventory management and job control.
JS7 can operate thousands of Agents across any platform in parallel.
Platforms
- Cloud scheduling for Docker®, OpenShift®, Kubernetes® etc.
- True multi-platform scheduling on premises, for Windows®, Linux®, AIX®, Solaris®, macOS® etc.
- Hybrid cloud and on-premises use
User Interface
- Modern GUI with no-code approach for inventory management, monitoring, and control using web browsers
- Near-real-time information provides immediate visibility to status changes, log outputs of jobs and workflows.
- Multi-client functionality, role-based access management
- OIDC authentication and LDAP integration
High Availability
- Redundancy & Resilience based on asynchronous design and autonomous Agents
- Clustering of all JS7 Products, automatic fail-over and manual switch-over
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Graylog is the AI-powered SIEM and log management platform built to help security and IT operations teams work faster, stay focused, and stay in control. It brings together all your event data in one place so teams can detect real threats quickly, investigate efficiently, and manage data costs predictably—without compromise.
Graylog’s explainable AI turns noise into clarity, highlighting what matters most and guiding analysts through consistent, confident response steps. Its open, flexible architecture adapts to any environment, empowering organizations to scale and evolve without being locked into rigid systems or unpredictable pricing.
With Graylog Security, Enterprise, API Security, and Open, more than 60,000 organizations worldwide rely on Graylog to deliver faster insight, simpler operations, and a smarter path to SIEM without compromise.
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Geneyx
Geneyx Analysis offers an all-encompassing solution for managing next-generation sequencing (NGS) data, efficiently transforming FASTQ files into clinical reports tailored for both hospital and commercial laboratories. This cutting-edge platform incorporates machine learning and artificial intelligence capabilities to uncover new biomedical insights, enhancing diagnostic efficiency and reducing turnaround times. By delivering a fully transparent and user-friendly interface, Geneyx Analysis empowers clinicians and researchers with complete control over data interpretation and simplifies the challenges associated with managing in-house bioinformatics workflows. Users can customize protocols to suit various gene panels, exomes, and genomes, while our extensive annotation engine facilitates the analysis of all genetic variants, including structural and copy number variations, as well as regulatory elements. In combination, Geneyx Analysis streamlines the diagnostic journey from sequencer output to finalized report, while also serving as a valuable resource for the discovery of novel variants. This platform not only enhances clinical capabilities but also paves the way for groundbreaking research in genomics.
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Galaxy
Galaxy serves as an open-source, web-based platform specifically designed for handling data-intensive research in the biomedical field. For newcomers to Galaxy, it is advisable to begin with the introductory materials or explore the available help resources. You can also opt to set up your own instance of Galaxy by following the detailed tutorial and selecting from a vast array of tools available in the tool shed. The current Galaxy instance operates on infrastructure generously supplied by the Texas Advanced Computing Center. Furthermore, additional resources are mainly accessible through the Jetstream2 cloud, facilitated by ACCESS and supported by the National Science Foundation. Users can quantify, visualize, and summarize mismatches present in deep sequencing datasets, as well as construct maximum-likelihood phylogenetic trees. This platform also supports phylogenomic and evolutionary tree construction using multiple sequences, the merging of matching reads into clusters with the TN-93 method, and the removal of sequences from a reference that are within a specified distance of a cluster. Lastly, researchers can perform maximum-likelihood estimations to ascertain gene essentiality scores, making Galaxy a powerful tool for various applications in genomic research.
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