
Langfuse
Helicone AI
LangSmith
LangChain
PromptLayer
Braintrust.dev
Humanloop
Openlayer
Google Cloud Storage
Amazon S3
Azure Blob Storage
Minio
IBM Cloud Object Storage
DigitalOcean Spaces
Amazon Simple Storage Service (S3)
DynamoDB
Langfuse is an open-source LLM engineering platform designed to empower developers by providing insights into user interactions with their LLM applications. We offer tools that help developers understand usage patterns, diagnose issues, and improve application performance based on real user data. By integrating seamlessly into existing workflows, Langfuse streamlines the process of monitoring, debugging, and optimizing LLM applications. Our platform's robust documentation and active community support make it easy for developers to leverage Langfuse for enhancing their LLM projects efficiently. Whether you're troubleshooting interactions or iterating on new features, Langfuse is committed to simplifying your LLM development journey.
Langfuse
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Langfuse and LangSmith exist for this. Use them. The 30 minutes you spend setting up observability saves you the 87 hours you'd spend debugging blind. - Source: dev.to / 4 days ago
In this project we will build a Python banking assistant agent using Strands Agents and make it observable and continuously evaluated using Langfuse โ step by step. - Source: dev.to / about 1 month ago
Langfuse is the open-source standard for LLM observability. It traces every LLM interaction โ prompts, completions, latency, token usage, cost โ and provides the tooling to debug, evaluate, and optimize LLM applications in production. Think of it as "Datadog for LLM calls" with a focus on prompt engineering workflows. - Source: dev.to / 2 months ago
You're monitoring production traffic. You need Langfuse / Phoenix / Helicone / Braintrust for that. Online eval is a different problem class: implicit feedback, drift detection, hallucination rates on your data, not on HellaSwag. - Source: dev.to / 2 months ago
Gateway or proxy attribution. A reverse proxy in front of the model-provider API records the request, computes the cost, and exposes per-customer breakdowns. Open-source options include Helicone, LiteLLM, Langfuse, and OpenLLMetry. Hosted equivalents serve as the AI cost observability layer for teams that want centralized visibility: LangSmith, Datadog LLM Observability, Arize Phoenix. Adds a network hop.... - Source: dev.to / 2 months ago
Cloud Storage FUSE mounts a Cloud Storage bucket as a local filesystem. Your code reads and writes files normally, and GCS FUSE translates those operations into Cloud Storage API calls:. - Source: dev.to / 5 months ago
The cold data storage layer: Data was ultimately stored in Google Cloud Storage (GCS). - Source: dev.to / 11 months ago
Before deploying, I had to activate the free $300 credits, since some services require billing to be enabled beforehand, such as the Cloud Storage which is used to host my recreated resume as a static website (as part of 4. Static Website). - Source: dev.to / about 1 year ago
There are also other object storage services that provide more comprehensive CAS support such as ABS, GCS, MinIO, R2, and Tigris. - Source: dev.to / about 1 year ago
Seamless integration with Google Cloud: GKE integrates smoothly with other Google Cloud services like Cloud Storage, Cloud SQL, and, importantly, Vertex AI, where Gemini and other LLMs are hosted. - Source: dev.to / over 1 year ago
Helicone AI - Open-source LLM Observability for Developers
Amazon S3 - Amazon S3 is an object storage where users can store data from their business on a safe, cloud-based platform. Amazon S3 operates in 54 availability zones within 18 graphic regions and 1 local region.
LangSmith - Build and deploy LLM applications with confidence
Azure Blob Storage - Use Azure Blob Storage to store all kinds of files. Azure hot, cool, and archive storage is reliable cloud object storage for unstructured data
LangChain - Framework for building applications with LLMs through composability
Minio - Minio is an open-source minimal cloud storage server.