Shipeasy.ai
Summary
Production errors pile up in Slack threads, GitHub issues stay unfiled for days, and the on-call engineer spends Tuesday morning triaging noise instead of shipping — Shipeasy.ai is built for the team that is tired of being the glue between their monitoring dashboard and their git repo.
Shipeasy.ai connects error tracking, metric alerts, and in-app feedback into a single queue, then hands that queue to agents that file issues and open pull requests without waiting for a human to copy-paste a stack trace. The vendor describes a feature called Reflex, which watches thresholds and triggers agent-driven fixes automatically. That loop — detect, file, fix, PR — is the core pitch. Where it strains: the agent automation is only as good as the fix patterns it can act on, and complex multi-file refactors or context-heavy bugs will still land in a human queue. Teams with highly custom CI gates or monorepo structures report needing extra configuration before the PR queue behaves as expected.
Bottom line: Bet on Shipeasy.ai when your team is drowning in repetitive error triage and wants agents closing the obvious bugs automatically — plan a different workflow when the fix requires architectural judgment no PR template can encode.
Pricing Plans
Subscription- Free Tier
- 100K events/mo, 10 metrics, 5 alert rules, 7 days retention, hard cap
Free
100K events/mo, 10 metrics, 5 alert rules, 7 days retention
- Unlimited members
- Ops queue
- Unlimited Autopilot runs
Pro
1M events/mo included, then $5/M; 30 days retention
- Shipeasy Reflex auto-agents
- 50 metrics, 25 alert rules
- Hosted MCP, email support
Business
10M events/mo included, then $5/M; 90 days retention
- Mobile app
- Unlimited metrics & alerts
- Email + Slack support
Enterprise
Committed volume, custom features
- SAML/SSO, SCIM, RBAC
- Data warehouse export
- Dedicated support SLA
View full pricing on shipeasy.ai →
Pricing may have changed since last verified. Check the official site for current plans.
Community Performance Report Card
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Pros
Sign in to edit- Unified queue combining errors, metric alerts, and in-app feedback, so context that normally scatters across three dashboards is in one place when an agent or engineer picks up a ticket.
- Reflex auto-files issues and triggers fix agents on threshold breaches, which means repetitive, pattern-matching bugs stop requiring a human to notice and act before a PR exists.
- Agent-generated PR queue lets you review fixes rather than write them, so the on-call rotation shifts from firefighting to code review on the issues Reflex handles correctly.
- API available, so existing deployment pipelines and internal tools can push events into Shipeasy.ai or pull queue state without being locked into the web UI.
- Freemium entry point means a small team can validate the detect-to-PR loop on real production traffic before committing to paid capacity.
Cons
Sign in to edit- Agent-generated PRs break down on bugs requiring cross-service context or architectural judgment — the PR queue fills with incomplete patches that still need human rewriting, which costs more review time than skipping the agent entirely would have.
- No self-hosted option means teams under data residency mandates, SOC 2 audit scopes that prohibit third-party error ingestion, or air-gapped environments cannot use the product at all — those teams evaluate self-hostable alternatives instead.
- Reflex threshold configuration is only as precise as the metrics you can express as simple conditions; complex anomaly detection requiring ML-based baselines is not described in vendor documentation, so teams needing that sophistication add a separate monitoring layer alongside Shipeasy.ai.
- The PR automation assumes a compatible git and CI setup — teams running non-standard monorepo configurations or custom merge policies report needing significant configuration work before the PR queue integrates cleanly, at which point the time savings narrow.
About
- API Available
- Yes
- Self-Hosted
- No
- Last Updated
- 2026-08-16T12:52:58.427Z
Best For
Who it's for
- Teams using coding agents for issue resolution
- Developers needing unified error and feedback tracking
- Organizations wanting flat-priced observability with agent automation
What it does well
- Tracking and triaging production errors
- Automating issue filing and agent-driven fixes as PRs
- Monitoring metrics with threshold alerts
- Collecting in-app feedback into a unified queue
Integrations
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Sign Up to ContributeFrequently Asked Questions
- Is Shipeasy.ai free?
- Shipeasy.ai has a permanent free tier alongside paid upgrades. You can keep using a baseline version indefinitely without paying.
- Is Shipeasy.ai open source?
- No — Shipeasy.ai is a closed-source tool. Source code is not publicly available.
- Does Shipeasy.ai have an API?
- Yes. Shipeasy.ai exposes a developer API. See the official documentation at https://shipeasy.ai for details.
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Production errors pile up without action
Production errors pile up in Slack threads, GitHub issues stay unfiled for days, and the on-call engineer spends time triaging noise instead of shipping. Shipeasy.ai connects error tracking, metric alerts, and in-app feedback into a single queue, then hands that queue to agents that file issues and open pull requests. The vendor describes a feature called Reflex, which watches thresholds and triggers agent-driven fixes automatically. That loop of detect, file, fix, PR is the core pitch.
Features and limits
A free plan is available with 100K events per month, 10 metrics, 5 alert rules, and 7 days retention. Paid plans start from $39 per month after a 14-day trial. Integrations include Slack, email, webhooks, Claude, Cursor, Copilot, and Jules. An API is available.
Where it falls short
Agent automation is only as good as the fix patterns it can act on, so complex multi-file refactors or context-heavy bugs still land in a human queue. No self-hosted option is offered.
Who it is for and who should skip it
It suits teams using coding agents for issue resolution, developers needing unified error and feedback tracking, and organizations wanting observability with agent automation. Teams under data residency rules or facing highly custom bugs should skip it.
