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What is Weaviate?

Weaviate is an open-source, AI-native database that helps organizations build and ship AI applications on a single, scalable foundation. It stores data objects alongside the vector embeddings produced by your chosen machine learning models and scales smoothly to billions of records. Teams can supply their own vectors or use Weaviate's built-in vectorization, then query their data through vector, keyword, and hybrid search to surface the most relevant results, even with complex filters. By integrating with leading large language models, Weaviate makes it straightforward to build retrieval-augmented generation, grounded question answering, and intelligent search over proprietary data. Beyond core retrieval, Weaviate offers a growing platform: the Query Agent converts natural-language questions into precise, cited queries; Engram provides managed memory that lets AI agents retain context over time; and Weaviate Embeddings handles vectorization as a managed service. Organizations can self-host under an open-source license or adopt fully managed Weaviate Cloud on AWS, GCP, or Azure, with SOC 2 Type II compliance, multi-tenancy, replication, and role-based access control. From semantic search and recommendations to agentic automation, Weaviate turns business data into AI-powered products.

What is Gemini Embedding 2?

The Gemini Embedding models, particularly the sophisticated Gemini Embedding 2, are a vital component of Google's Gemini AI framework, designed to convert text, phrases, sentences, and code into numerical vectors that capture their semantic essence. Unlike generative models that produce new content, these embedding models transform inputs into dense vectors that represent meaning mathematically, allowing for the analysis and comparison of information through conceptual relationships rather than just specific wording. This unique capability enables a wide range of applications, such as semantic search, recommendation systems, document retrieval, clustering, classification, and retrieval-augmented generation processes. Furthermore, the model supports over 100 languages and can process inputs of up to 2048 tokens, which allows it to efficiently embed longer texts or code while maintaining a strong contextual understanding. As a result, the Gemini Embedding models significantly contribute to the effectiveness of AI-driven tasks in various industries, making them indispensable tools for modern applications. Their adaptability and robust performance highlight the importance of advanced embedding techniques in the evolving landscape of artificial intelligence.

Media

Media

Integrations Supported

Agno
Amazon Web Services (AWS)
Azure Marketplace
Boomi
Claude Code
Cleanlab
Cohere
Confluent
DeepEval
FriendliAI
Gemini
Grok
LlamaIndex
Mem0
Mistral AI
OpenAI
Patronus AI
Python
Superlinked
n8n

Integrations Supported

Agno
Amazon Web Services (AWS)
Azure Marketplace
Boomi
Claude Code
Cleanlab
Cohere
Confluent
DeepEval
FriendliAI
Gemini
Grok
LlamaIndex
Mem0
Mistral AI
OpenAI
Patronus AI
Python
Superlinked
n8n

API Availability

Has API

API Availability

Has API

Pricing Information

Free
Open source (free); free Weaviate Cloud tier; paid Cloud plans from $45/mo.
Free Version
Free Trial Offered?

Pricing Information

Free
Free Version
Free Trial Offered?

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Company Facts

Organization Name

Weaviate

Date Founded

2019

Company Location

The Netherlands

Company Website

weaviate.io

Company Facts

Organization Name

Google

Date Founded

1998

Company Location

United States

Company Website

blog.google/innovation-and-ai/models-and-research/gemini-models/gemini-embedding-2/

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