NEW RELEASE

Build observable AI workflows for how your company actually operates

AI Workflow is a free, open-source platform for connecting agents, tools, checks, approvals, and notifications into repeatable workflows. Use it to build issue-triage, code-review, team-notification, and other operational workflows while tracing actions, usage, and cost from one dashboard.

iN SHORT

Turn repeatable work into observable, governed AI operations

What it does?

AI Workflow coordinates triggers, context, agents, tools, deterministic checks, approvals, notifications, and outputs. Teams can inspect the open-source foundation, configure it around their own process, and extend it for engineering, support, review, communication, and other multi-step workflows.

What is the outcome?

Teams replace one-off prompts and disconnected automations with workflows they can inspect, test, reuse, and improve. Leaders gain a shared view of how workflows run, where people intervene, which agents and models are used, and how AI usage and cost change across the organization.

Who is it for?

Platform engineering, AI enablement, developer productivity, operations, and software delivery teams that want to evaluate, build, or scale AI-assisted work without losing control of process, cost, quality, or their existing tools.

See it in action

KEY FEATURES

What's in the box

1

Open-source workflow platform, setup documentation, and editable workflow definitions

2

Configurable triggers, integrations, agents, models, and reusable workflow patterns

3

Issue triage, code review, team notification, approval, and escalation flows

4

Scoped execution with deterministic checks and human control points

5

End-to-end action traces, logs, evidence, and workflow observability

6

Organization-level AI usage, cost, workflow health, and intervention dashboards

MEET THE AUTHORS

Who’s behind the code

Photo of Jakub Jabłoński, CTO at Blazity
Jakub Jabłoński
CTO
Portrait of Kacper Siniło
Kacper Siniło
Software Engineer
Portrait of Karol Chudzik
Karol Chudzik
Software Engineer

How It Works

The problem with disconnected AI automation

AI agents can perform useful tasks, but many companies still operate them through isolated prompts, personal scripts, and disconnected point automations.

The process around the agent is often invisible. Teams cannot easily see which context was used, which actions ran, why a step failed, where people intervened, or how much AI usage and cost is accumulating across teams.

Without a shared workflow and observability layer, every new automation creates another hard-to-review path through company systems.

How AI Workflow solves it

AI Workflow turns a selected process into an explicit, inspectable workflow. Teams define triggers, context, agent tasks, deterministic commands, review steps, notifications, approvals, and outputs as connected stages.

The workflow can clarify incomplete work, route outcomes through different paths, coordinate parallel review, notify the right people, and stop safely when required evidence is missing. Its dashboard can trace each action and connect workflow versions, agent and model usage, human interventions, outputs, and cost.

Instead of replacing the tools your teams already use, the workflow coordinates them around a repeatable operating process. Teams can configure and extend the open-source project themselves, or work with Blazity when they want help with discovery, integrations, controls, deployment, or rollout.

Architecture overview

1. Trigger and integration layer

Selected events from your existing systems start the workflow. Custom integrations normalize the input and load the relevant project context, company rules, permissions, and workflow data before execution begins.

2. Workflow orchestration layer

The workflow definition controls branches, loops, parallel steps, input and output bindings, retry budgets, failure routes, agents, tools, notifications, and human checkpoints. Reusable patterns capture working practices without forcing every team into the same process.

3. Execution and control layer

Selected AI agents and deterministic tools operate with scoped access. Checks, budgets, approvals, independent review, and structured outputs control what each stage may do and whether the workflow can continue.

4. Observability and management layer

Teams can inspect active and historical runs, answer clarification requests, approve consequential actions, review evidence, and stop work when needed. Dashboards can aggregate workflow health, action traces, agent and model usage, cost, interventions, and outcomes across the configured organization scope.

Data flow

Event or approved manual action received → Relevant company context loaded → Custom workflow and policies selected → Agents, tools, and deterministic steps run → Checks, approvals, notifications, and failure routes applied → Output delivered to the existing system → Actions, usage, interventions, and cost recorded in the dashboard.

Get Started

Option 1: Try the open-source project

Explore the public repository, follow the setup documentation, inspect the workflow definitions, and run AI Workflow in your own environment.

View AI Workflow on GitHub →

Option 2: Configure it for your team

Start with one bounded process, connect the required systems, then configure the workflow, agents, checks, permissions, approvals, notifications, failure paths, and dashboard views around it.

Option 3: Work with Blazity

If you want implementation support, Blazity can help map the process, build missing integrations, configure controls, deploy the platform, test representative scenarios, and roll it out across additional teams and use cases.

Common Extensions

  • Issue and incident triage with evidence-backed routing and escalation
  • Code review, pull-request quality, browser regression, and release-validation workflows
  • Team notifications, approvals, scheduled reports, and cross-system handoffs
  • Content, data-processing, customer-support, and other repeatable operational workflows
  • Additional company-specific integrations, permissions, security controls, and deployment profiles
  • Organization analytics connecting workflow versions, AI usage, cost, intervention, quality, latency, and outcomes

Outcome

AI Workflow gives organizations a shared control and observability layer for AI-assisted work.

Agents can move quickly, but the surrounding process stays explicit: the right context is loaded, actions are scoped, checks are enforced, humans approve consequential decisions, notifications reach the right teams, and every run leaves evidence.

The result is not another isolated agent. It is an open, adaptable operating layer for repeatable workflows that teams can inspect, govern, and improve while leaders see AI usage and cost from one place.

Before you talk to us

FAQ on AI Workflow

What is AI Workflow?

AI Workflow is a free, open-source platform that coordinates triggers, company context, AI agents, deterministic tools, approvals, notifications, and outputs as one observable process.

How is AI Workflow different from an AI coding agent?

An AI agent performs a task. AI Workflow controls the process around that agent: when it runs, which context and permissions it receives, which tools and checks it uses, when a human must respond, who gets notified, and how the result moves through existing systems.

Do we need Blazity to use it?

No. Your team can inspect the repository, follow the setup documentation, deploy it, and configure workflows directly. Blazity is available if you want help designing the workflow, connecting company-specific systems, defining controls, or managing rollout.

Can AI Workflow show company-wide AI usage and cost?

A tailored dashboard can aggregate workflow runs, agent and model usage, token and cost data, workflow health, human interventions, and outcomes across the configured organization scope. The exact view depends on the connected providers and the data they expose.

How does AI Workflow keep actions safe and reviewable?

The implementation can combine scoped access, isolated execution, versioned definitions, budgets, deterministic checks, structured failure routes, and human approval gates. Controls are designed around the risk and authority of each action rather than applied as one generic policy.

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WHY BLAZITY

Why choose Blazity as your partner?

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Certified Experts

Vercel Gold Partner – one of 11 worldwide. Certified on the same AI Cloud stack we build with you.
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AI-Native Delivery

We put our AI engineering tools inside your development – with governance, speed & quality gates.
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Trust Before Engagement

Test our OSS libraries, check our partners, or talk to our clients before you commit.
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We Own The Outcome

Engineers who think like owners. Proactive, accountable, and quality-obsessed.
CONTACT US

Start with the problem. We'll get to the architecture.

Describe your project and an architect will get back with a straight take on what's worth doing and where to start. 12-hour response time.

TRUSTED BY
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