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Kyvos

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Analítica y BI · www.kyvosinsights.com/

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Resumen

Kyvos is a universal semantic layer that sits between enterprise data platforms and the BI tools, chatbots and AI agents that consume them, defining metrics, dimensions and hierarchies once so every tool returns the same answer. It builds and manages aggregated semantic data models on the customer's data lake or warehouse to deliver sub-second query response at billion-row scale and high concurrency without pushing every query down to expensive compute. It is commonly used to replace legacy OLAP engines such as SSAS, Essbase and TM1 with a cloud-native equivalent.

El problema que resuelve Kyvos

Enterprises with billions of rows in a cloud warehouse hit a wall where interactive dashboards either time out or drive runaway compute bills, and every BI tool and AI agent ends up with its own slightly different definition of the same metric. Kyvos solves that by defining metrics, dimensions and hierarchies once in a semantic layer and serving queries from pre-built aggregates, so Power BI, Tableau, Excel and AI agents all get the same governed answer in under a second without pushing each query down to metered warehouse compute.

Contexto para decidir

Usa estos puntos para comprobar si el producto encaja con tu operación, no solo con la lista de funciones.

  • Precio de entrada publicado: Free. Confirma límites de usuarios, uso y funciones por plan.
  • Despliegue: cloud, on_premise, hybrid. Comprueba requisitos de seguridad, residencia de datos y acceso para todos los equipos que lo utilizarán.
  • Integraciones verificadas: Microsoft Power BI, Tableau, Microsoft Excel, Looker, Strategy (MicroStrategy), Snowflake. Valida el sentido de sincronización y los límites del plan elegido.
  • La ficha se comprobó por última vez el 31/7/2026; los precios y las funciones pueden cambiar.

Cómo evaluar Kyvos

Una ficha ayuda a crear una lista corta; una prueba con el flujo real del equipo decide si la herramienta encaja. Usa esta lectura junto con los datos estructurados y confirma cualquier cambio con el proveedor.

Encaje de flujo

El registro la considera especialmente adecuada para Enterprises running interactive BI on billions of rows in Snowflake, Databricks, BigQuery or Redshift where warehouse compute costs are escalating, Teams migrating legacy OLAP cubes off SSAS, Essbase, TM1 or Azure Analysis Services to a cloud-native multidimensional engine, Organizations grounding AI agents and conversational analytics in governed enterprise metrics to reduce hallucination and metric drift. Comprueba que ese contexto coincide con el volumen, los roles y los procesos que debe soportar tu equipo.

Preguntas del piloto

  • ¿Puede Kyvos completar el flujo crítico sin trabajo manual fuera de la herramienta?
  • ¿Las conexiones registradas (Microsoft Power BI, Tableau, Microsoft Excel, Looker) cubren el sentido de sincronización, los permisos y el volumen que necesitamos?
  • ¿Qué límites de usuarios, uso, almacenamiento, soporte o seguridad aparecen después del precio inicial?

Evidencia y vigencia

Esta ficha se comprobó el 31/7/2026. La fecha indica cuándo se revisó el registro, no una garantía de que el proveedor no haya cambiado sus condiciones después.

Ideal para

  • Enterprises running interactive BI on billions of rows in Snowflake, Databricks, BigQuery or Redshift where warehouse compute costs are escalating
  • Teams migrating legacy OLAP cubes off SSAS, Essbase, TM1 or Azure Analysis Services to a cloud-native multidimensional engine
  • Organizations grounding AI agents and conversational analytics in governed enterprise metrics to reduce hallucination and metric drift

No encaja si

  • Small teams or startups with modest data volumes, where the modeling effort and infrastructure footprint far exceed the benefit of a dedicated semantic layer
  • Buyers wanting an out-of-the-box BI front end with rich visualization and mobile apps, since Kyvos is an acceleration and semantics layer that assumes you bring your own BI tool

Por qué está listada

  • One of the few semantic layers that pre-aggregates data rather than relying purely on query pushdown, which is what lets it hold sub-second response on billion-row datasets at high concurrency.
  • Serves both BI and AI consumers from the same governed model, exposing an MCP server and LangChain connectivity alongside SQL, MDX and DAX for traditional BI tools.
  • Published, transparent per-core-hour pricing plus a genuinely free forever tier, which is unusual in the enterprise semantic layer category.

Precios

Kyvos Free

Free

A no-cost, full-featured single-node edition intended for smaller datasets and evaluation, available via AWS Marketplace with no end date.

  • Access to advanced product features at no software cost
  • Practical up to roughly 2 billion records
  • Maximum 50 million cardinality per dimension
  • Single-node deployment (8-core / 32 GB minimum)
  • Underlying cloud infrastructure billed separately

Kyvos on Cloud Marketplace

$0 per core hour

Self-deployed into your own AWS, Azure or Google Cloud account, billed per second through your existing cloud bill.

  • $0.41 per core hour, billed per second
  • No fixed monthly or minimum charges
  • Data stays in your own cloud account
  • Choose your own region and availability zone
  • Spend counts toward your cloud commit

Kyvos Managed Service

$1 per core hour

Vendor-managed deployment on dedicated infrastructure, with the license, infrastructure and ongoing management bundled together.

  • $0.61 per core hour, billed per second
  • Includes infrastructure and management
  • Dedicated infrastructure on your chosen cloud and region
  • Connects to the data lake of your choice
  • SOC 2 Type II compliant
  • Discounts for committed bulk usage

Kyvos On Premise

$48,000 per year

Deployed into your own environment on AWS, Azure, Google Cloud or Cloudera, with data never leaving your infrastructure.

  • Annual subscription starting at $48,000
  • Deploy on infrastructure of your choice
  • Data stays entirely in your infrastructure
  • Pay-per-use option also available
  • Discounts for committed bulk usage

Funciones

Dashboards & visualizationBrowser-based dashboards and visualization combining multiple views into a real-time overview.
Self-service BIBusiness users explore governed models directly or through Power BI, Tableau and Excel without SQL.
Natural language queryKyvos Dialogs provides context-aware conversational analytics over the semantic layer.
Semantic layer / data modelingCore product: one governed model of metrics, dimensions and hierarchies shared across BI and AI.
Embedded analyticsAPIs allow embedding analytics in custom applications, but there is no dedicated embedding SDK or white-label product.
AI featuresMCP server for AI agents, LangChain connectivity and semantic grounding to reduce LLM hallucination.
Data governance & lineageRBAC, row and column-level security, column masking, centralized policy control and visual audit logs.
Public APIFull API support for querying models and programmatic model management, plus an MCP server interface.
Alerts & notificationsNotifications fire on data model and access-pattern changes; no general metric-threshold alerting engine.
Mobile appNo dedicated mobile application; consumption is via browser or a connected BI tool's own mobile client.

Integraciones

Microsoft Power BITableauMicrosoft ExcelLookerStrategy (MicroStrategy)SnowflakeDatabricksGoogle BigQueryAmazon RedshiftMicrosoft FabricClouderaOktaMicrosoft Entra IDLangChainAzure Key Vault

Seguridad y cumplimiento

SOC 2 Type ISOC 2 Type IIISO 27001HIPAA

Pros y contras

Pros

  • Query performance on very large datasets is the standout theme, with reviewers reporting reports that previously took minutes returning in seconds
  • Meaningful reduction in cloud warehouse spend because aggregates absorb query load instead of pushing it down to metered compute
  • Works through existing BI tools via native connectors, so analysts keep using Power BI, Tableau or Excel rather than learning a new interface
  • Strong enterprise security and governance depth: row and column-level security, RBAC, SSO, column masking and visual audit logs

Contras

  • Steep learning curve; effective use assumes solid grounding in multidimensional data modeling and big data environments
  • MDX expertise is needed for advanced work, which slows down teams without prior OLAP experience
  • Initial setup, cube design and build cycles require significant upfront investment before value is realized
  • The admin and modeling UI is described as less intuitive than expected, and cube-scoped models can make cross-dataset exploration feel siloed

Qué muestra el registro

4.8/5
247 reviews agregadasÚltima comprobación 2026-07-31

Reviewers consistently rate query speed at scale and cloud cost reduction very highly, while flagging a steep initial learning curve around multidimensional modeling and MDX.

Resumen y puntuación agregados de plataformas públicas de reseñas. Enlazamos a las reseñas originales en lugar de reproducirlas — lee la fuente antes de decidir.

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