Software Alternatives, Accelerators & Startups

SocialFetch.dev VS Langfuse

Compare SocialFetch.dev VS Langfuse and see what are their differences

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SocialFetch.dev logo SocialFetch.dev

Social media scraping API for public profiles, posts, comments, videos, transcripts, and metrics from TikTok, Instagram, YouTube, X, LinkedIn, and more. Pay-as-you-go credits, 100 free to start.

Langfuse logo Langfuse

Langfuse is an open-source LLM engineering platform that helps teams collaboratively debug, analyze, and iterate on their LLM applications.
  • SocialFetch.dev Landing page
    Landing page //
    2026-06-17
  • SocialFetch.dev Test our API in the playground.
    Test our API in the playground. //
    2026-06-17

Social Fetch is the social media data API for teams that need to ship features, not maintain scrapers.

Every major platform changes its DOM, blocks proxies, and breaks homegrown integrations. Social Fetch handles that infrastructure โ€” headless browsers, rate limits, normalization โ€” so you get clean, live JSON back on every request. No stale cache. No per-platform parsers in your codebase.

What you can fetch: profiles and follower data, posts and reels, comments and threads, video transcripts, hashtag/keyword search, ad library intelligence, and engagement metrics โ€” across TikTok, Instagram, YouTube, X, LinkedIn, Facebook, Reddit, Threads, GitHub, Spotify, and more.

Built for: creator tools, marketing analytics, brand safety and impersonation detection, competitive intelligence, enrichment pipelines, monitoring dashboards, and AI agent workflows. Integrate with cURL, Python, Node, our official TypeScript SDK, or our MCP server for Cursor and Claude.

Pricing: pay-as-you-go credits that never expire. No monthly subscription. Start with 100 free credits โ€” no credit card required.

  • Langfuse Landing page
    Landing page //
    2023-08-20

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.

SocialFetch.dev

$ Details
freemium $9.0 (Pay-as-you-go credits, never expire)
Platforms
Web
Release Date
2024 January
Startup details
Country
United Kingdom
Founder(s)
Luke Askew
Employees
1 - 9

Langfuse

Pricing URL
-
$ Details
Platforms
-
Release Date
-
Startup details
Country
United States
State
California

SocialFetch.dev features and specs

  • API
    REST API with unified JSON schema across 20+ social platforms
  • Data Scraping
    TikTok, Instagram, YouTube, X, LinkedIn, Facebook, Reddit, Threads, and 15+ more
  • Pricing Model
    Pay-as-you-go credits. No subscription. 100 free to start.

Langfuse features and specs

  • User-Friendly Interface
    Langfuse offers a clean and intuitive interface that makes it easy for users to navigate and use the platform efficiently, regardless of their technical skill level.
  • Integration Capabilities
    The platform provides a variety of APIs and integration options, allowing users to seamlessly connect Langfuse with other applications and services they use.
  • Comprehensive Analysis Tools
    Langfuse offers advanced analysis tools that help users to gain insights from their language data, improving decision-making and strategy development.

Possible disadvantages of Langfuse

  • Limited Language Support
    While Langfuse offers a range of language options, it may not support as many languages as some global companies require, potentially limiting its usability for diverse linguistic needs.
  • Pricing Model
    The pricing model of Langfuse might be considered expensive for small businesses or startups with a limited budget, which can make it less accessible to those users.
  • Learning Curve for Advanced Features
    While the basic features are easy to use, some advanced functionalities might have a steep learning curve, requiring more time and effort from users to fully leverage them.

Analysis of SocialFetch.dev

Overall verdict

  • I don't have verified information about SocialFetch.dev in my training data, so I can't confirm its features, reliability, pricing, or legitimacy. Based on the name, it appears to be a tool related to fetching or scraping social media data/content, but I cannot verify its quality, safety, or whether it's an active, reputable service.

Why this product is good

  • Unable to verify specific features or capabilities of this service
  • No confirmed data on user reviews, uptime, or customer support quality
  • Cannot confirm compliance with social media platforms' terms of service (data scraping tools often violate platform ToS)
  • No verifiable information on pricing, security practices, or company legitimacy

Recommended for

  • Before using this service, verify its legitimacy through independent reviews, check if it complies with relevant platform APIs and terms of service
  • Research whether the service has a transparent privacy policy and data handling practices
  • Confirm the company's reputation through third-party sources like Trustpilot, Reddit, or G2
  • Consult with a technical or legal advisor if using it for business purposes involving social media data extraction

SocialFetch.dev videos

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Langfuse videos

Langfuse in two minutes

Category Popularity

0-100% (relative to SocialFetch.dev and Langfuse)
APIs
100 100%
0% 0
AI
0 0%
100% 100
Developer Tools
6 6%
94% 94
Productivity
0 0%
100% 100

Questions & Answers

As answered by people managing SocialFetch.dev and Langfuse.

What makes your product unique?

SocialFetch.dev's answer

Social Fetch provides a unified REST API that lets developers collect public data from 20+ social platforms โ€” TikTok, Instagram, YouTube, X, LinkedIn, Reddit, Facebook, Threads, and more โ€” using a single consistent JSON schema. There is no need to learn or maintain separate APIs for each network. Credits never expire, and you only pay for what you use, making it ideal for both prototyping and production-scale data pipelines.

Why should a person choose your product over its competitors?

SocialFetch.dev's answer

Unlike solutions that require you to set up and maintain separate API integrations for each platform, Social Fetch gives you one API key and one consistent schema across all supported networks. You get the same response structure whether you are fetching TikTok videos, Instagram posts, or YouTube channels. The pay-as-you-go model means no wasted monthly spend on idle subscriptions, and credits never expire so there is no pressure to use them up.

How would you describe the primary audience of your product?

SocialFetch.dev's answer

Social Fetch is primarily used by developers, data engineers, and growth marketers who need programmatic access to social media data without building and maintaining individual platform integrations. Common use cases include social analytics tools, influencer research platforms, content aggregation pipelines, brand monitoring dashboards, and AI training datasets that require large-scale social content.

What's the story behind your product?

SocialFetch.dev's answer

Social Fetch was founded by Luke Askew, a developer who repeatedly ran into the same problem while building social analytics tools: every platform had a different API, different authentication flows, different rate limits, and different response shapes. Building and maintaining integrations for even a handful of platforms was a significant ongoing burden. Social Fetch was created to solve this by acting as a single abstraction layer, so developers can focus on what they are building rather than on the plumbing beneath it.

Which are the primary technologies used for building your product?

SocialFetch.dev's answer

Social Fetch is built on Next.js and TypeScript, deployed on Vercel. The API layer is serverless and runs on edge infrastructure for low latency globally. Data is processed and stored using cloud-native services, and the platform uses tRPC for type-safe internal APIs. The codebase is a TypeScript monorepo, enabling shared types between the API, frontend, and internal tooling.

Who are some of the biggest customers of your product?

SocialFetch.dev's answer

Social Fetch is currently used by early-stage startups, independent developers, and small analytics teams. As a newer product launched in 2024, we are still growing our customer base. If you are interested in using Social Fetch or would like to be featured here, please reach out at hello@socialfetch.dev.

User comments

Share your experience with using SocialFetch.dev and Langfuse. For example, how are they different and which one is better?
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Social recommendations and mentions

Based on our record, Langfuse seems to be more popular. It has been mentiond 28 times since March 2021. We are tracking product recommendations and mentions on various public social media platforms and blogs. They can help you identify which product is more popular and what people think of it.

SocialFetch.dev mentions (0)

We have not tracked any mentions of SocialFetch.dev yet. Tracking of SocialFetch.dev recommendations started around Jun 2026.

Langfuse mentions (28)

  • Strands Agents + Langfuse Evaluations
    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
  • Best AI Monitoring Tools in 2026: LLM, Agent, and MCP Observability Compared
    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 / about 2 months ago
  • What is an LLM evaluation harness? A deep dive into lm-eval-harness
    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
  • How to track LLM costs per customer in production
    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
  • Per-user cost attribution for your AI APP
    Same approach works with Langfuse, Phoenix, Braintrust, or your existing OTel pipeline โ€” the metadata.userId pattern is the universal part. - Source: dev.to / 3 months ago
View more

What are some alternatives?

When comparing SocialFetch.dev and Langfuse, you can also consider the following products

API Direct - A pay-as-you-go social media API. Search real-time data across multiple social platforms through one standardized API. No monthly fees or commitments โ€” just pay per request.

Helicone AI - Open-source LLM Observability for Developers

Apify Python SDK - Build and manage web scraping Actors in the cloud.

LangSmith - Build and deploy LLM applications with confidence

Simple Scraper - Extract data from any website in seconds โ€” download instantly, scrape in the cloud, or create an API.

LangChain - Framework for building applications with LLMs through composability