VITAORBIT | Astronaut Readiness Intelligence — Investor Pilot Deck
Private & confidential Investor / R&D funding deck · 2026

VITAORBIT

AI readiness intelligence for human spaceflight — built with astronauts first, then scaled through elite performance.

Astronaut-first pilot Task-specific readiness Human-in-the-loop AI Athletes as second market

VITAORBIT turns fragmented physiological, cognitive and operational data into an explainable readiness forecast for the next mission-critical task.

Investment thesis

The valuable asset is not another dashboard. It is a longitudinal model of human readiness under extreme conditions.

Readiness changes hour by hour, yet high-stakes teams still assemble the decision from disconnected wearables, medical checks, cognitive tests and expert judgement. VITAORBIT begins where the cost of a wrong decision is highest: astronaut training and human spaceflight. Elite sport is the secondary market and validation engine, adding frequent interventions and measurable outcomes to a shared readiness model.

Problem

Readiness is dynamic

Sleep, circadian disruption, workload, cognition, stress, nutrition and individual physiology interact. Static thresholds miss the pattern.

Primary wedge

Astronaut decisions are high-value

Training and mission tasks are tightly planned, heavily monitored and safety-critical — the strongest environment for proving operational value.

Secondary engine

Elite sport accelerates learning

Athletes create denser repetitions of load, recovery and performance, helping validate portability without diluting the astronaut-first focus.

Moat

Outcomes compound the model

Each task, intervention and result strengthens a proprietary dataset linking human state, operational context and performance outcome.

Build the readiness layer for human spaceflight, validate it in astronaut operations, then scale the same intelligence across elite performance.

The problem

Mission readiness is a high-stakes decision assembled from low-resolution, fragmented signals.

Teams can collect more human-performance data than ever, yet the operational question remains unresolved: is this individual ready for this specific task, at this specific time — and what should the team do next?

01

Fragmented evidence

Wearables, sleep, cognitive tests, training loads, medical observations and self-reports live in separate systems.

02

Population thresholds

Generic norms hide individual baselines, sex-specific and cyclical physiology, and the effects of environment or mission context.

03

Retrospective dashboards

Most tools describe what happened. Few forecast task-specific readiness over the next operational window.

04

Manual synthesis

Flight surgeons, trainers and performance leads must translate competing signals under time pressure, with no shared confidence layer.

Core gap: the market has sensors and experts, but no trusted intelligence layer that learns the individual, forecasts readiness and explains uncertainty.

Why now

Continuous sensing, personalised AI and a new human-spaceflight economy have converged.

VITAORBIT is possible now because mission-relevant human-performance signals can be captured continuously, multimodal time-series models can learn individual baselines, and spaceflight organisations need scalable ways to protect readiness as crew profiles and operating environments diversify.

Demand

More complex crew operations

Commercial, research and analogue programmes create more training pathways, mixed-experience crews and readiness decisions.

Data

Signals can travel with the human

Wearables, cognitive tests, subjective check-ins, task loads and environmental data can be combined across training and operations.

AI

Models can learn the individual

The next leap is a calibrated readiness model that updates with each person, flags uncertainty and remains accountable to human experts.

Primary pilot market

Astronaut training is the proving ground. Elite sport is the scale engine.

VITAORBIT starts with the users for whom readiness is mission-critical and the institutional buyers who already coordinate medicine, training and operations. The second market — elite sport — increases data velocity, commercial reach and repeatable performance outcomes.

Primary user

Astronauts and candidates

Participants need a clear, personalised view of recovery, cognitive state and readiness during demanding training and mission preparation.

Primary buyer

Spaceflight organisations

Operators, training providers, analogue programmes and space-medicine teams need consistent, auditable decision support.

First outcome

Task-specific readiness

Forecast the next 24-hour readiness window for high-load training or mission-relevant tasks, with confidence and risk drivers.

Secondary market

Elite athletes

Teams and performance centres provide higher-frequency training, recovery and return-to-performance outcomes using the same engine.

First product: an explainable 24-hour readiness forecast for astronaut training and mission-relevant tasks, updated as new physiological, cognitive and operational data arrives.

Product

From raw human-performance signals to an auditable readiness recommendation.

VITAORBIT is a decision-support system, not an autonomous medical-clearance tool. It shows the forecast, the drivers, the confidence and the recommended next check. Final authority remains with the astronaut, flight surgeon, mission commander or training lead.

Signal layer
Readiness intelligence
Human decision
Continuous physiologySleep, HRV, resting heart rate, temperature, movement and recovery trends.
Learns the individual baseline; detects deviation, accumulated fatigue and incomplete recovery.
Continue, adapt workload, add recovery time or request expert review.
Cognition and self-reportReaction, attention, fatigue, stress, mood and perceived readiness.
Estimates cognitive readiness and reconciles subjective state with sensor patterns.
Re-test, change task timing, introduce a countermeasure or escalate a discrepancy.
Operational contextTraining load, task demand, travel, circadian shift, heat, hypoxia and schedule changes.
Produces a task- and time-specific forecast instead of a generic wellness score.
Modify sequence, staffing, timing or monitoring intensity.
Governed clinical contextApproved medical observations, biomarkers, nutrition and sex-specific or cyclical factors where relevant and consented.
Adds context without over-claiming diagnosis; records provenance and model uncertainty.
Route to the responsible clinician or operational authority — never issue an autonomous go/no-go.
The product loop

Observe. Personalise. Forecast. Act. Learn.

Every participant creates an individual baseline. Every task and intervention produces an outcome. Every governed outcome strengthens the readiness model.

01

Observe

Connect consented physiological, cognitive, behavioural, workload and environmental signals.

02

Personalise

Learn the individual's baseline, response patterns, uncertainty and relevant physiological context.

03

Forecast

Estimate readiness for a defined task and time window; expose the drivers and confidence level.

04

Act and learn

Record the human decision, intervention and outcome; update the model for the next forecast.

Long-term product: a simulation-based human readiness twin that helps authorised teams compare countermeasures before applying them.

Platform architecture

One core readiness engine. Two initial applications.

Astronaut readiness establishes the safety-critical workflow. Elite sport validates the engine at higher frequency. Both applications use the same core capability: predict an individual's response to workload, stress and intervention in context.

Core engine

Individual readiness model

How does this person respond to load, sleep loss, circadian shift, stress, environment, nutrition and recovery?

Primary application

Astronaut readiness

Participant view, expert review, mission-relevant task forecast and documented escalation workflow.

Secondary application

Elite performance

Athlete readiness, training-response forecasting, recovery decisions and return-to-performance support.

Trust layer

Accountable by design

Confidence scoring, data provenance, consent controls, access roles, audit logs and human authority.

Defensibility

The moat is governed, task-linked readiness data from environments that are difficult to access and harder to reproduce.

VITAORBIT's defensibility is not the interface or a generic model architecture. It is the longitudinal record connecting an individual's state, operational context, human decision, intervention and verified outcome.

01

Multimodal and contextual

Physiology, sleep, cognition, self-report, workload, environment and governed expert observations.

02

Task- and outcome-linked

Not passive tracking: each forecast connects to a defined task, human decision, intervention and performance result.

03

Individual and longitudinal

The model learns within-person change across training blocks, travel, circadian disruption, recovery and extreme environments.

04

Trust and access compound

Competitors can copy features. They cannot easily recreate participant trust, institutional workflows, data rights and expert-labelled outcomes.

The governed evidence loop becomes the company.

Market architecture

Enter through human spaceflight. Expand through elite performance.

The beachhead is intentionally narrow: high-value astronaut-readiness workflows sold to institutions. Elite sport is the second commercial market, using the same readiness engine with greater participant volume and more frequent outcome cycles.

Primary pilot

Astronaut training

Astronauts, candidates and analogue crews; training providers, programme operators and space-medicine teams.

Primary expansion

Human spaceflight operations

Mission preparation, high-load task windows, crew monitoring and research protocols across commercial and institutional programmes.

Secondary market

Elite athletes

Readiness, training response, recovery and return-to-performance for teams, federations and performance centres.

Adjacent market

Extreme-performance teams

Aviation, polar, maritime and defence-related research settings where fatigue and readiness affect safety.

Platform layer

Research and licensing

Longitudinal human-performance studies, model licensing and approved integrations for expert-led decision systems.

Business model

High-value enterprise contracts first. Recurring licences as evidence compounds.

The initial business is B2B: paid astronaut-readiness pilots with organisations, followed by recurring platform licences. Elite-performance contracts form the second revenue line. Pricing below is an initial hypothesis to validate, not booked revenue.

Layer 01

Paid feasibility pilots

Fixed-scope contracts covering integration, readiness workflows, expert review and prospective validation.

Layer 02

Enterprise platform

Annual organisational licence plus implementation, participant capacity and premium support.

Layer 03

Participant and expert modules

Per-participant readiness models and optional cognitive, biomarker, environment or specialist-review modules.

Layer 04

Research and model licensing

Contract research, cohort analytics and approved model integrations for institutions and technology partners.

Customer
Initial product
Revenue model
Spaceflight and training organisationsOperators, astronaut-training providers and analogue programmes.
6–12 month astronaut-readiness pilot with integrations and expert workflow.
Indicative: £50k–£150k per pilot, converting to an enterprise licence.
Operational and research institutionsSpace-medicine, universities and human-performance laboratories.
Governed cohort analytics, readiness engine and research reporting.
Indicative: £100k–£300k annual licence plus integration and support.
Elite-performance organisationsProfessional teams, federations and high-performance centres.
Athlete readiness, recovery and training-response application.
Indicative: £30k–£120k annual licence, scaled by cohort and modules.
Go-to-market

Win through access, evidence and trust — before scale.

The first year prioritises a small number of high-quality astronaut-readiness partners, named operational users and a prospective protocol. The athlete cohort follows as a deliberate secondary validation stream.

01

Secure anchor access

Sign 2–3 astronaut-training, analogue-mission or human-performance partners with defined users and data rights.

02

Build trust into the product

Implement privacy, consent, role-based access, data provenance, model confidence and human-review workflows from day one.

03

Prove operational utility

Measure data completeness, forecast calibration, expert usefulness, time saved and whether the output improves a real decision.

04

Open the second market

Use the validated engine with elite-performance partners, then convert both markets into annual licences and modules.

Founder-market fit

Built at the intersection of astronaut training, applied AI and responsible human-performance innovation.

VITAORBIT is grounded in direct domain immersion rather than a remote technology thesis. The founder's training and research create a practical route to discovery and early feasibility testing; institutional partners, ethics review and prospective validation remain essential before operational use.

Domain access

Human-spaceflight training

Admitted to an intensive five-month Human Spaceflight Certificate in Toulouse beginning in October 2026, creating first-hand exposure to astronaut-readiness workflows.

Applied AI

Oxford research lens

Completing the Executive Diploma in AI for Business at the University of Oxford, with applied work on machine-learning decision support for astronaut EVA readiness.

Feasibility

Human-performance pilot design

A founder-led feasibility protocol links wearable biomarkers, cognitive readiness and self-reported state before expansion to partner cohorts.

Operating principle

Ethics by design

Human authority, consent, explainability, sex-aware modelling and international collaboration are treated as product requirements.

Founder advantage: close proximity to the problem, the ability to test the earliest workflow at low cost and a credible bridge between spaceflight, AI, ethics and high-performance communities.

Proof plan

The pilot is designed to retire investor risk — not merely generate engagement.

The round should fund four explicit evidence gates. Targets are proposed pilot thresholds and will be finalised with operational, research and ethics partners before prospective testing.

Proof
Investor question
Proposed evidence gate
Technical feasibilityCan heterogeneous signals be captured reliably in operational settings?
Can the platform produce a stable, individual readiness timeline?
Target: at least 85% usable planned data-days, traceable provenance and reliable cross-device ingestion.
Predictive valueDoes a personalised model outperform a simple rolling baseline?
Is the signal more useful than a wearable score or static threshold?
Predefined accuracy, calibration and false-ready metrics for a 24-hour task-readiness forecast.
Operational utilityDo authorised experts trust and use the output?
Does VITAORBIT improve a real workflow without displacing human authority?
Expert-rated usefulness, decision time, alert actionability, overrides and documented reasons.
Commercial pullWill institutions pay and will the engine travel to sport?
Is there a repeatable enterprise wedge and a credible second market?
At least two paid pilots or equivalent commitments, renewal intent and a secondary athlete validation cohort.
Competition

The market has sensors and dashboards. It lacks a trusted operational readiness layer.

Alternative
What it does well
Where VITAORBIT wins
Wearables and recovery scoresDevice-specific sleep, strain and recovery products.
Continuous sensing, familiar interfaces and strong participant adoption.
Combines multiple sources with task demand, individual context, confidence and human decision workflow.
Crew and performance dashboardsMonitoring, scheduling, workload and medical records.
Operational visibility, reporting and established workflows.
Adds a prospective, personalised forecast instead of another retrospective data view.
Clinical and expert assessmentFlight medicine, sports science and specialist judgement.
Domain authority, contextual interpretation and accountability.
Augments experts with longitudinal synthesis, calibrated uncertainty and an auditable evidence trail.
Generic AI and analyticsCopilots, dashboards and horizontal machine-learning platforms.
Flexible analysis and fast prototyping.
Purpose-built readiness ontology, governed data rights, prospective validation and safety-critical workflow design.
R&D and public-funding fit

The technical risk is the product: safe, individual readiness forecasting from sparse, multimodal data.

The funded project tackles a genuine R&D challenge: building an explainable model that learns within-person change, transfers carefully across contexts and communicates uncertainty in a safety-critical human workflow.

WP1

Readiness ontology

Define the architecture linking human state, task demand, environment, intervention, decision and outcome.

WP2

Personalised time-series model

Build baseline, variation, anomaly, response and confidence models that work with small individual datasets.

WP3

Forecast and trust engine

Predict a defined readiness window, expose contributing signals, quantify uncertainty and trigger escalation rules.

WP4

Prospective validation

Test first in astronaut-relevant training and analogue settings, then assess portability with an athlete cohort.

Public-funding rationale: material technical uncertainty, responsible-AI requirements, a credible enterprise pathway and strategic relevance to human spaceflight and high-performance innovation.

Roadmap

Astronaut-first validation. Athlete-powered scale. A compounding readiness platform.

0-3 months

Lock the protocol

Confirm the readiness task, outcome labels, data rights, ethics pathway, pilot partners and human authority model.

3-6 months

Build and sandbox the MVP

Integrate wearables, cognition, self-report, workload and environment; launch participant and expert views.

6-12 months

Run the primary pilot

Target 12–20 astronauts, astronaut candidates or analogue participants across 2–3 partner programmes.

12-18 months

Validate the second market

Test portability with a larger elite-athlete cohort while converting primary pilots into annual contracts.

18+ months

Scale the platform

Expand enterprise licences, partner integrations, research use cases and governed readiness models.

The ask

Seeking investors and primary pilot partners to validate astronaut readiness intelligence.

VITAORBIT is raising milestone-based pre-seed and non-dilutive R&D funding to build the readiness engine, run the astronaut-first pilot and establish elite sport as the second commercial market. The exact round size will be tied to the final protocol and partner scope.

Astronaut-first validation 24-hour readiness forecast Responsible AI Elite sport expansion
01Capital
Fund an 18-month programme covering product, data engineering, responsible AI, prospective validation and enterprise readiness.
02Primary pilot partners
Spaceflight operators, astronaut-training providers, analogue programmes and space-medicine teams with named expert users.
03Secondary validation partners
Elite teams, federations and high-performance centres able to test the same readiness engine at greater frequency.
04Research and technology partners
Human-performance researchers, wearables, cognitive testing, biomarkers, data governance and AI-safety specialists.

First-phase success: a working readiness MVP; 2–3 primary partner programmes; a target cohort of 12–20 astronaut, candidate or analogue participants; a secondary athlete cohort; prospective evidence against baseline; governed longitudinal data; and a clear path from pilot contracts to recurring revenue.

Astronauts first. Athletes second. A human-readiness platform built for the most demanding environments.

VITAORBIT · Private investor / R&D funding deck · Astronaut readiness intelligence

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