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Webhound

FreemiumAPIAgentic

Summary

Most research agents stop at the first page of results and call it done — Webhound runs multi-step research loops, keeps digging until its budget runs out, and cites every source it touches.

Webhound is an agentic deep-research tool built for questions where a single search round leaves gaps: market sizing, competitive intelligence, regulatory exposure, and literature reviews. The agent plans its own task sequence, pulls from multiple sources, and continues iterating until a token budget you set is exhausted — so depth is a dial, not a fixed behavior. API and MCP access let you slot it into existing pipelines without manual handoffs. The sourced-output design means every claim traces back, which matters when the output feeds a board deck or a diligence report. The scraped page content is sparse, so production edge cases around failure handling and source diversity are not verifiable from vendor documentation alone.

Bottom line: Webhound earns its place in agent pipelines where traceable, multi-source depth is the requirement — but teams that need guaranteed uptime SLAs or on-premise data handling will hit a wall fast, since no self-hosted option exists.

Pricing Plans

Usage-Based
Price
$1 per million input tokens, $3 per million output tokens; $1 ≈ 15 minutes
Free Tier
$5 free on signup for eligible new accounts (~75 minutes)

View full pricing on webhound.ai →

Pricing may have changed since last verified. Check the official site for current plans.

Community Performance Report Card

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Best For: Agent pipelines requiring deep, multi-source research, Questions where top search results are insufficient, Building traceable datasets and reports, Budget-controlled depth without subscriptions

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  • Budget-controlled research depth, so you spend proportionally to the question's complexity instead of paying a flat subscription rate regardless of actual usage.
  • Autonomous multi-step task planning means the agent decides how to decompose a research question and follows threads without you specifying each search step — which removes the bottleneck of manual query iteration.
  • Sourced outputs tie every finding to an origin document, so the results can go directly into a diligence report or board deck without a secondary verification pass.
  • API and MCP access let you embed research tasks inside existing agent pipelines, avoiding the manual copy-paste step that breaks automation at scale.
  • Pay-as-you-go pricing with no subscription, the vendor states, means low-volume or irregular research workloads do not carry a fixed monthly cost penalty.
  • No self-hosted option exists: teams operating under data-residency requirements or internal security policies that prohibit third-party cloud processing have no path forward — they switch to a self-hostable research agent or build their own retrieval layer.
  • Budget exhaustion is the agent's stop condition, not task completion: a poorly scoped question can burn a token budget before reaching a useful answer, and the vendor documentation does not describe how the agent signals partial results versus confident conclusions — teams handling this in production add a validation wrapper that re-runs or escalates on thin outputs.
  • The product page provides precious little detail on source diversity, failure handling, or rate limits under concurrent task loads — engineering leads who need to model pipeline reliability before committing will find the available documentation insufficient and may default to a more documented competitor while Webhound matures.

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About

Platforms
Web
API Available
Yes
Self-Hosted
No
Last Updated
2026-07-28T08:01:56.919Z

Best For

Who it's for

  • Agent pipelines requiring deep, multi-source research
  • Questions where top search results are insufficient
  • Building traceable datasets and reports
  • Budget-controlled depth without subscriptions

What it does well

  • Market sizing, pricing, and churn analysis
  • Competitive intelligence from pricing pages and changelogs
  • Company diligence with sourced red flags and regulatory exposure
  • Lit reviews of current techniques and benchmarks
  • Policy and regulatory timelines from primary documents

Integrations

MCPAPI

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Frequently Asked Questions

Is Webhound free?
Webhound has a permanent free tier alongside paid upgrades (paid plans from $1 per million input tokens, $3 per million output tokens; $1 ≈ 15 minutes). You can keep using a baseline version indefinitely without paying.
Is Webhound open source?
No — Webhound is a closed-source tool. Source code is not publicly available.
Does Webhound have an API?
Yes. Webhound exposes a developer API. See the official documentation at https://webhound.ai for details.
What platforms does Webhound support?
Webhound is available on: Web.

Hours Saved & ROI Stories Community

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Webhound

Webhound runs autonomous, multi-step research loops on questions that top search results cannot adequately answer. You give it a research task and a token budget; the agent plans its own sequence of searches, follows threads across sources, and keeps working until the budget is exhausted or the task is resolved. Outputs include sourced findings — each claim tied to a traceable origin — making the results usable in contexts where unsourced summaries would be rejected.

The budget-controlled depth model is the differentiating mechanic. Instead of a fixed number of search rounds or a subscription tier that dictates what the agent attempts, you control spend per task. A shallow market-sizing check costs less than a full regulatory-exposure sweep of a target company. That pay-as-you-go structure, the vendor states, comes with no subscription requirement — you load credit and spend it as tasks warrant.

Webhound fits agent pipelines that need research as a callable step: competitive intelligence runs, changelog and pricing-page monitoring, lit reviews for benchmarking, and company diligence with flagged regulatory exposure. API and MCP access, as described on the product page, mean you can trigger research tasks programmatically and pipe structured results downstream without a human intermediary. Where it breaks: teams that require data to stay inside their own infrastructure have no self-hosted path, and the sparse public documentation makes it hard to audit how the agent handles ambiguous or contradictory source material before you commit a task budget to finding out.