THE DATA ENGINEFOR PHYSICAL AI

Trusted by Clients
20+

Build better Physical AI models with high-quality training-ready datasets, powered by real-world egocentric data, multimodal annotation, motion capture, and teleoperation.

Humanoid robot
0K+
Egocentric videos captured across diverse real-world environments
Egocentric Videos
0M+
Human annotations labelled for action, intent, and scene context
Human Annotations
0K+
Trained operators contributing teleoperation and motion capture data worldwide
Trained Operators Worldwide
0K+
Hours of curated, policy-ready training data across robot morphologies
Hours of Training Data
Humanoid figure with reflected silhouette
About Us

TRAINING DATA MADE FOR
REAL-WORLD ROBOTS

Egocentric DataMultimodal AnnotationEmbodied AI

In robotics, your models are only as good as your data. At Robgence, we help robotics teams collect and annotate real-world training data across diverse environments, delivering egocentric, multimodal, and teleoperation datasets needed to build more capable embodied AI systems.

Our Service

Complete Data Infrastructure
for Robotics and Embodied AI

From data collection to dataset delivery, we provide training-ready datasets robotics teams need to build, evaluate, and scale embodied AI systems.

/ 01

Egocentric Data Collection

Capture first-person robotics training data using wearable cameras across real-world environments that improve imitation learning.

Egocentric DataFirst-Person VideoSensor Fusion
/ 02

Multimodal Annotation

Turn raw recordings into training-ready datasets with frame-level annotations, action segmentation, object tracking, intent labels, and quality checks.

AnnotationVLA Training DataQuality Assurance
/ 03

Human Motion Capture

Collect high-fidelity human motion data for robot learning, imitation learning, humanoid control, and embodied AI.

Motion CaptureRobot LearningHuman Demonstrations
/ 04

Teleoperation Data

Generate observation-action datasets through remotely operated tasks, to train robot manipulation and policy learning models.

TeleoperationPolicy LearningDemonstration Data
/ 05

Video AI Datasets

Build custom video datasets (real+synthetic) for world models, robot perception, and vision-language-action models.

World ModelsRobot PerceptionVLA Models
/ 06

Synthetic Data & Sim2Real

Scale training data with physics-aware synthetic datasets, digital twins, and domain-randomized environments for robot training.

Synthetic DataSim2RealDigital Twins
Why Robgence

Why Robotics Teams
Choose Robgence

All robotics datasets are not created equal. Robgence uses global data collection, robotics expertise, and enterprise-grade quality control to produce datasets ready for training scalable robot learning and physical AI systems.

01

Global Operator Network

20,000+ trained operators across 50+ cities and 5 continents for scalable real-world data collection.

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02

Built for Robotics

Purpose-built workflows for Physical AI, humanoid robotics, and robot learning.

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03

Multimodal by Design

RGB, depth, audio, IMU, pose, and action labels captured in synchronized pipelines.

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04

Enterprise-Grade QA

Multi-stage validation, provenance tracking, and compliance built into every dataset.

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05

Custom Training Data

Collection, annotation, and formats tailored to your model and deployment goals.

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06

Fast Dataset Delivery

From project planning to production-ready datasets in weeks.

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Get Started

Ready to Build Your Training Dataset?

Technology

Built to Collect Physical AI Data at Scale

Egocentric by Design

Capture first-person data from the perspective robots learn from. Our wearable capture systems combine video, depth, audio, and sensor streams into synchronized multimodal datasets.

Global Collection Network

Deploy data collection across a range of real-world environments like homes, factories, hospitals, warehouses, through a network of 20,000+ trained operators.

Training-Ready Delivery

From annotation and quality assurance to structured formats and cloud delivery, datasets arrive ready for robotics, embodied AI, and VLA training pipelines.

Global Network

Real-World Data, Collected Around the World

1,000+Customers|
50+Cities|
5Continents
San Francisco
Mexico City
São Paulo
London
Kyiv
Cairo
Lagos
Nairobi
Karachi
Mumbai
Dhaka
Bangkok
Ho Chi Minh
Jakarta
Manila

Access a global network of trained operators collecting egocentric and multimodal data delivered ready for training and evaluation, across diverse real-world environments.

KitchensDomestic prep
StreetsUrban activity
WarehousesLogistics
WorkshopsCrafting
HomesResidential
OfficesWorkplace

Advancing the Future of
Physical AI with Robgence

Front-facing humanoid robot symbolising the next wave of innovation

Why Data Quality Matters
More Than Data Volume

Physical AI systems depend on diverse, real-world training data. Diversity of environments and interactions plays a more significant role than the size of your dataset.

Explore Insights
08 February 2026Henry Leonardo

Our Focus Environments

Data collected where Physical AI operates

Private Homes

Private Homes

Capture everyday human interactions, object manipulation, and navigation behaviors in real residential environments.

Active Manufacturing Floors

Active Manufacturing Floors

Collect robotics training data from active production environments involving assembly, inspection, and material handling workflows.

Food and Beverage

Food and Beverage

Record human-object interactions, task execution, and service workflows across dynamic hospitality environments.

Offices

Offices

Capture navigation, workspace interactions, collaboration, and object usage in structured professional settings.

Warehouses and Logistics

Warehouses and Logistics

Collect data for picking, packing, sorting, inventory handling, and autonomous workflow optimization in live logistics operations.

Farms and Greenhouses

Farms and Greenhouses

Gather data from unstructured agricultural environments involving harvesting, inspection, crop handling, and field operations.

Data Coverage
for Real-World Robotics

Explore Data Collection
Indoor
Outdoor
Vehicles
Sports
Urban
Nature
Industry
People
The Bottleneck

PHYSICAL AI IS BLOCKED ON data, NOT MODELS.

The best robotics teams use the same papers and the same compute. What separates production autonomy from impressive demos is the quality and realism of training data, captured where most teams cannot reach.

“Ten hours of curated factory data outperforms ten thousand hours of curated lab footage. Robots learn best from the environments they are expected to operate in.”

We help robotics teams collect, annotate, and deliver training-ready datasets from real-world environments, enabling more robust embodied AI systems.

Real-World Data Collection

Capture data from a range of real-world environments where Physical AI systems operate.

Multimodal Training Data

Collect synchronized streams of video, audio, motion, and sensor data to enhance robotics training, embodied AI, and Vision-Language-Action models.

Domain-Specific Annotation

Generate high-quality annotations designed for robotics workflows, including action labeling, object interactions, teleoperation, and motion data.

Training-Ready Delivery

Receive structured datasets that integrate directly into model training, evaluation, and deployment pipelines.

For Robotics Teams

Built for Robotics Teams. Delivered End-to-End.

From data collection and annotation to quality assurance and delivery, Robgence manages the entire data pipeline so your team can focus on training, evaluating, and deploying Physical AI systems.

Real-World Environments

Collect data across homes, warehouses, factories, offices, farms, and other environments where robots are deployed.

Egocentric & Multimodal Data

Capture first-person video, audio, motion, and sensor streams that enhance robotics training and embodied AI.

Training-Ready Annotation

Receive high-quality annotations for object interactions, actions, teleoperation, motion capture, and VLA model development.

Managed Data Operations

We handle hardware deployment, operator training, quality control, and dataset delivery from start to finish.

Receding futuristic tunnel of light symbolising the path into autonomous infrastructure

FROM REAL-WORLD INTERACTIONS
TO TRAINING-READY DATA

Explore how Robgence captures, annotates, and delivers training-ready datasets across real-world environments, powering the next generation of embodied AI systems.