AI Buyer Insights:

Westpac NZ, an Infosys Finacle customer evaluated nCino Bank OS

Citigroup, a VestmarkONE customer evaluated BlackRock Aladdin Wealth

Michelin, an e2open customer evaluated Oracle Transportation Management

Swedbank, a Temenos T24 customer evaluated Oracle Flexcube

Wayfair, a Korber HighJump WMS customer just evaluated Manhattan WMS

Moog, an UKG AutoTime customer evaluated Workday Time and Attendance

Cantor Fitzgerald, a Kyriba Treasury customer evaluated GTreasury

Westpac NZ, an Infosys Finacle customer evaluated nCino Bank OS

Citigroup, a VestmarkONE customer evaluated BlackRock Aladdin Wealth

Michelin, an e2open customer evaluated Oracle Transportation Management

Swedbank, a Temenos T24 customer evaluated Oracle Flexcube

Wayfair, a Korber HighJump WMS customer just evaluated Manhattan WMS

Moog, an UKG AutoTime customer evaluated Workday Time and Attendance

Cantor Fitzgerald, a Kyriba Treasury customer evaluated GTreasury

List of LightlyOne Customers

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Logo Customer Industry Empl. Revenue Country Vendor Application Category When SI Insight
Kiwibot Transportation 150 $30M United States Lightly LightlyOne ML and Data Science Platforms 2023 n/a
In 2023, Kiwibot deployed LightlyOne in the ML and Data Science Platforms category to automatically select high-value training images from millions of robot-collected frames, supporting its autonomous delivery and robotics operations in the United States. The deployment targeted segmentation model development for production fleets, with a stated focus on improving edge-case discovery and tightening retraining cadence for live robots. Kiwibot used LightlyOne capabilities for active selection and dataset curation, reducing labeling waste by prioritizing informative and rare frames and enabling a 3× faster model iteration cycle for segmentation models. LightlyOne processed continuous camera frame streams to surface diverse, high-value samples for human labeling and for inclusion in retraining datasets, positioning Kiwibot LightlyOne ML and Data Science Platforms as the training data selection layer for model development workflows. Operational scope emphasized autonomous delivery teams and production fleet tooling in the United States, with the implementation feeding selected frames into Kiwibot’s labeling and retraining workflows to accelerate model updates. Governance adjustments focused on changing retraining cadence and edge-case monitoring processes to incorporate continuous curated sampling, and the vendor case study explicitly reports reduced labeling waste, faster iteration cycles, and improved discovery of production edge cases.
San Diego Supercomputer Center Education 10 $1M United States Lightly LightlyOne ML and Data Science Platforms 2024 n/a
In 2024 San Diego Supercomputer Center deployed LightlyOne within its ML and Data Science Platforms work to curate surgical video frames for instrument detection. The deployment targeted healthcare and surgical video data curation workflows in the United States and was oriented toward supporting YOLOv8 model training and labeling pipelines. LightlyOne was configured to perform large scale frame selection, automated redundancy reduction, and curated sampling to produce training ready image sets. The implementation documented use of the LightlyOne module to score and select frames, enabling more frequent model iteration and streamlined dataset handoffs to labeling teams. Operationally the system processed 2.3 million frames in one month and accelerated labeling throughput by approximately 10× for YOLOv8 training, outcomes reported in the LightlyOne case study. The scope focused on surgical instrument detection, affecting data engineering and ML engineering functions responsible for dataset preparation and model retraining workflows. Governance emphasized dataset curation workflows and iteration cadence, with LightlyOne embedded into labeling and model training pipelines to shorten iteration cycles. The configuration prioritized scalable frame selection and curated dataset delivery consistent with ML and Data Science Platforms capabilities.
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FAQ - APPS RUN THE WORLD LightlyOne Coverage

LightlyOne is a ML and Data Science Platforms solution from Lightly.

Companies worldwide use LightlyOne, from small firms to large enterprises across 21+ industries.

Organizations such as Kiwibot and San Diego Supercomputer Center are recorded users of LightlyOne for ML and Data Science Platforms.

Companies using LightlyOne are most concentrated in Transportation and Education, with adoption spanning over 21 industries.

Companies using LightlyOne are most concentrated in United States, with adoption tracked across 195 countries worldwide. This global distribution highlights the popularity of LightlyOne across Americas, EMEA, and APAC.

Companies using LightlyOne range from small businesses with 0-100 employees - 50%, to mid-sized firms with 101-1,000 employees - 50%, large organizations with 1,001-10,000 employees - 0%, and global enterprises with 10,000+ employees - 0%.

Customers of LightlyOne include firms across all revenue levels — from $0-100M, to $101M-$1B, $1B-$10B, and $10B+ global corporations.

Contact APPS RUN THE WORLD to access the full verified LightlyOne customer database with detailed Firmographics such as industry, geography, revenue, and employee breakdowns as well as key decision makers in charge of ML and Data Science Platforms.