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Control Seat website screenshot

Control Seat

Control Seat is an AI-native industrial systems integrator building a modern replacement for legacy SCADA (Supervisory Control and Data Acquisition) platforms such as Ignition, WinCC, and FactoryTalk. It designs, builds, deploys, and runs the full industrial control stack, from PLC programming (Allen-Bradley, Siemens, Beckhoff) and HMI/SCADA operator screens to OT/IT networking, historians, and analytics, on a single unified platform. The product connects to field devices over OPC UA and MQTT (Sparkplug B), integrates with AVEVA PI, Ignition, and standard SQL/time-series databases (PostgreSQL, MySQL, InfluxDB, Prometheus) plus REST APIs, and streams 10k+ tags per second at sub-100ms latency. AI-native features let operators generate control screens in seconds, run anomaly detection and forecasting, and query the historian in plain English. Enterprise capabilities include SSO, SCIM, role-based access control, and audit logs, with deployment on managed cloud or self-hosted on-premises. Founded in 2025 by Jack Grodnick and Warren Shepard, Control Seat is based in San Francisco and backed by Y Combinator (Summer 2026).

human only

More than an index entry, but the surface is still mostly links rather than artifacts — the cohort most likely to move a full band from modest, well-targeted work.

Kin Score

API Evangelist profiles Control Seat the way a machine reads it — 1 machine-readable artifact, pulled from the provider's own public surface and indexed so a developer, an analyst, or an AI agent can evaluate it against every other provider on the network.

Every provider in the network is reduced to the same set of machine-readable artifacts — OpenAPI contracts, event specifications, GraphQL schemas, runnable collections, pricing and rate-limit signals, security posture, OAuth scopes, and the agent surfaces (MCP servers and skills) that let software drive the API on its own. We profile them because the interface is the part of a company you can actually inspect: it is a truer signal of what a provider does than any marketing page. From those artifacts we compute the Kin Score — Control Seat scores 21.2/100 (emerging), with a separate agent-readiness read of 0/100 (human only). The full breakdown is below, followed by every artifact we hold — each card links through to its machine-readable definition on apis.io.

Kin Score

This is the API Evangelist rating — a single, repeatable read computed from the artifacts on this page. Green fill is points earned; the red track is points possible, so every bar shows earned-versus-possible at a glance.

Kin Score Kin Score How this is scored →
scored 2026-07-27 · rubric v0.5
Composite quality — 21.2/100 · emerging
Contract Quality 0.0 / 25
Developer Ergonomics 6.1 / 20
Commercial Clarity 6.3 / 20
Operational Transparency 2.1 / 13
Governance 0.0 / 12
Discoverability 6.8 / 10
Agent readiness — 0/100 · human only
Machine-Readable Contract 0 / 18
Agentic Access Contract 0 / 15
MCP Server 0 / 12
Machine-Readable Auth 0 / 10
Idempotency 0 / 9
Stable Error Semantics 0 / 8
Request/Response Examples 0 / 7
Rate-Limit Signaling 0 / 7
Typed Event Surface 0 / 6
Agent Skills 0 / 5
Well-Known Catalog 0 / 4
Consent & Bot Identity 0 / 3

How we profile Control Seat

Each block below is one kind of artifact we hold for Control Seat. For each we say what it is and why it earns a place in the profile, then list every one we've indexed — capped at two rows, scroll within the panel for the rest.

Security Posture 1

Authentication, domain security, vulnerability disclosure, and trust-center signals — the evidence that a provider takes security seriously enough to document it. We profile it because you can't govern what you can't see.

Authentication, domain security, vulnerability disclosure, and trust-center signals.

Control Seat Domain Security

TLSv1.3 · DMARC

SECURITY

Resources

Every other property we hold for Control Seat — documentation, portals, status pages, policies, and corporate surface — grouped by the job it does, following the integrator's arc from getting started to running in production.

Get Started 1

Portal, sign-up, and the first successful call

Documentation 2

Reference material describing how the API behaves

Agent Surfaces 1

MCP servers, agent skills, and machine-readable catalogs

Access & Security 1

Authentication, authorization, and security posture

Operate 4

Status, limits, changes, and where to get help

Commercial 3

Pricing, plans, and the legal terms of use

Company 3

The organization behind the API

← All providers · Data indexed from github.com/api-evangelist/control-seat · machine-readable index on apis.io