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VictoriaMetrics: Simple & Reliable Monitoring for Everyone on VictoriaMetrics

Operator now has Long-Term Support (LTS) version Multi-tiered Observability: A Practical Way to Handle Diverse Workloads VictoriaMetrics April 2026 Ecosystem Updates Not All Telemetry Requires Premium Pricing VictoriaMetrics at KubeCon Amsterdam: Community Highlights What's new in VictoriaMetrics Anomaly Detection (Q1 2026) What's New in VictoriaMetrics Cloud Q1 2026? Logs, MCP Server, Better Alerting, and... a Secret Project VictoriaMetrics at KubeCon: Optimizing Tail Sampling in OpenTelemetry with Retroactive Sampling VictoriaMetrics March 2026 Ecosystem Updates Observability Lessons From OpenAI Benchmarking Kubernetes Log Collectors: vlagent, Vector, Fluent Bit, OpenTelemetry Collector, and more VictoriaMetrics February 2026 Ecosystem Updates VictoriaMetrics at FOSDEM, Cloud Native Days France, and CfgMgmtCamp Ghent VictoriaLogs in VictoriaMetrics Cloud: Fast, Cost-Effective Log Management is Here What’s new in VictoriaMetrics Anomaly Detection (2025) VictoriaMetrics January 2026 Ecosystem Updates VictoriaLogs Basics: What You Need to Know, with Examples & Visuals What's New in VictoriaMetrics Cloud Q4 2025? New tiers, more deployment options, IaC and alerting rules. Vibe coding tools observability with VictoriaMetrics Stack and OpenTelemetry How a US Software Provider Improved Traffic Alerting with VictoriaMetrics Anomaly Detection VictoriaMetrics 2025 Developer Experience: A Year in Review Spotify’s performance & control across large monitoring environments with VictoriaMetrics VictoriaMetrics Achieves Red Hat OpenShift Operator Certification Our latest updates across the VictoriaMetrics Observability ecosystem New Capacity Tiers in VictoriaMetrics Cloud Announcing 1B+ Downloads & Product Development With Logs, Traces, Metrics AI Agents Observability with OpenTelemetry and the VictoriaMetrics Stack Discarding gRPC-Go: The Story Behind OTLP/gRPC Support in VictoriaTraces What's New in VictoriaMetrics Cloud Q3 2025? From new region in Asia to proactive alerts How DreamHost Slashed Memory Usage by 80% and Scaled to 76 Million Time Series Upcoming Conferences & Meetups: Where to Meet Our Team VictoriaMetrics Long-Term Support (LTS): H2 2025 Update Creating a Sustainable Open Source Business Model - Introduction Full-Stack Observability with VictoriaMetrics in the OTel Demo Alerting Best Practices vmanomaly Deep Dive: Smarter Alerting with AI (Tech Talk Companion) VictoriaLogs Practical Ingestion Guide for Message, Time and Streams Monotonic and Wall Clock Time in the Go time package Hello Singapore! VictoriaMetrics Cloud Expands to Asia Pacific MCP Server Integration & Much More: What's New in VictoriaMetrics Cloud Q2 2025 FIPS 140-3 Compatible Builds for VictoriaMetrics Enterprise Components VictoriaLogs Unleashed: Cluster Version Now Available for Exceptional, Linear Scaling Integrations made easy with VictoriaMetrics Cloud Developer's Note: Research on Distributed Tracing, Comparing With Tempo and ClickHouse vmagent: Key Features Explained in Under 15 Minutes Go synctest: Solving Flaky Tests vmalert: Maximize Your Monitoring (Tech Talk Companion) Celebrating 14K Stars on GitHub: Spring Update vmalert: Maximize Your Monitoring VictoriaMetrics Connects with the Open Source Community at LinuxFest Northwest 2025 Graceful Shutdown in Go: Practical Patterns VictoriaLogs: Gaps, Gains & Growth Prometheus Monitoring: Functions, Subqueries, Operators, and Modifiers VictoriaMetrics Cloud: What's New in Q1 2025? Don’t default to microservices: You’ll thank us later! 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How vmstorage Handles Data Ingestion From vminsert When Metrics Meet vminsert: A Data-Delivery Story From net/rpc to gRPC in Go Applications Piros | VictoriaMetrics Partner Allenta | VictoriaMetrics Partner CloudRaft | VictoriaMetrics Partner Sensedia & VictoriaMetrics: API-compatible Efficient Storage Scalable Prometheus: Why DSV Chose VictoriaMetrics Sensor Factory | VictoriaMetrics Partner Erythix | VictoriaMetrics Partner Groove X & VictoriaMetrics: Faster Device Health Monitoring Scaled & Performant Monitoring at Spotify with VictoriaMetrics Grammarly & VictoriaMetrics: 10× Lower Costs & Direct Access Zelarsoft | VictoriaMetrics Partner DFKI & VictoriaMetrics: Efficient Long-Term Metric Storage Niubits | VictoriaMetrics Partner Megazone Cloud | VictoriaMetrics Partner Cogito Software | VictoriaMetrics Partner Bajau | VictoriaMetrics Partner Find Out Why Dig Security Chose VictoriaMetrics! 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VictoriaMetrics Efficiently Simplifies Log Complexity with VictoriaLogs
Jean-Jerome Schmidt-Soisson · 2024-11-13 · via VictoriaMetrics: Simple & Reliable Monitoring for Everyone on VictoriaMetrics

VictoriaLogs General Availability Delivers Unparalleled Performance and Scalability

#

Salt Lake City, Utah, 13th November 2024 – Today we’re delighted to announce the GA release of our innovative logging solution - VictoriaLogs.

Our easy-to-use, open source log management solution combines a powerful query language for easy log searching with minimal resource requirements. It’s perfect for managing and analyzing large volumes of log data, especially in containerized environments such as Kubernetes.

We’re also announcing the upcoming preview-release of VictoriaLogs Cluster, with the full release scheduled for 2025.

Read the full announcement below to get all the details!

VictoriaLogs - Key Highlights:

  • Improves query performance for haystack searches by up to 1000 times
  • Uses up to 30 times less RAM and 15 times less disk space than comparable solutions
  • Accepts logs from popular log collectors, including OpenTelemetry Collector, Vector, Fluentd, Logstash, Syslog, Rsyslog and Syslog-ng, Filebeat, Fluentbit, Fluentd, Logstash, Promtail, Telegraf, Journald, and DataDog
  • Supports ingestion directly via Syslog protocol, removing the need for proxies and converters

“VictoriaLogs addresses the major challenges of traditional log management tools. It significantly reduces memory usage and infrastructure costs, making it a game-changer for those frustrated by slow searches in large log volumes. By using bloom filters, VictoriaLogs accelerates haystack search times and quickly pinpoints relevant data, making queries up to 1,000 times faster than comparable Grafana Loki. Even the single-node version of VictoriaLogs is capable of replacing an Elasticsearch cluster of up to 30 nodes. It’s a high-performance tool that simplifies log management.”

- Aliaksandr Valialkin, Co-founder and CTO at VictoriaMetrics.

Seamless Integration for Comprehensive Observability VictoriaLogs integrates seamlessly with the broader observability ecosystem. By allowing users to correlate logs with metrics, it provides a holistic view of system performance and behavior. Support for popular log shippers like Vector, Fluentd, and Logstash, enable easy adoption without disrupting existing logging workflows. This integrated approach not only simplifies the observability stack, but also enhances troubleshooting capabilities by allowing users to swiftly navigate between related logs and metrics.

A New Era of Efficiency VictoriaLogs distinguishes itself from competitors by using automatically adjusted bloom filters instead of inverted indexes, allowing for accurate word searches providing definitive yes or no answers. By minimizing CPU time and disk read IO spent on unpacking, parsing, and reading logs, VictoriaLogs significantly saves computing resources at large scale.

Offering robust support for Syslog ingestion, VictoriaLogs simplifies this transition by allowing direct ingestion over Syslog without intermediaries. While Syslog remains a widely used standard, many existing solutions require additional proxies or converters, complicating the ingestion process. Users can easily migrate to VictoriaLogs by updating just the address or URL for their existing log shippers, ensuring a smooth transition.

“VictoriaLogs sets a new standard in log management performance, addressing the demands of today’s data-intensive environments. For example, where Grafana Loki creates new log streams each time a detail (such as an IP address or user ID) changes, VictoriaLogs treats these details as regular information within each log entry - resulting in fewer log streams and improving system performance and resource utilization. VictoriaLogs also achieves this while using up to 30 times less RAM and 15 times less disk space compared to Elasticsearch, making it an ideal choice for organizations dealing with massive log volumes.”

- Aliaksandr Valialkin, Co-founder and CTO at VictoriaMetrics.

Designed for Wide Events VictoriaLogs is optimized for efficient storing and querying of wide events containing hundreds of fields, accepting wide events with different sets of fields without the need to configure. The solution’s LogsQL query language simplifies querying wide events’ stats at high speed.

Smart architecture for cost-effective operations VictoriaLogs’ efficient data management also extends to its disk I/O performance, addressing a critical bottleneck in log analytics. By requiring substantially less disk space, the solution dramatically reduces the volume of data read during resource-intensive queries. Industry tests have shown that this approach can accelerate query performance by up to two orders of magnitude, with heavy queries executing up to 100 times faster than on comparable solutions. Try it out and let us know your feedback: https://victoriametrics.com/products/victorialogs/