Your next workflow,powered by AI. OCR and document automation. RAG assistants that search your documents. Vision and speech for your business.
Three engineers. A focused pilot. Evidence to decide what comes next.
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FROM DATA TO ACTION
Different inputs.New possibilities. Choose a starting point. Discover how we connect AI with everyday work.
01 Documents↗ 02 Knowledge↗ 03 Vision↗ 04 Speech↗
01 / SELECTED WORK
A practical problem. A workflow you can see. Six demonstrations to help you imagine your next tool. See how information enters, how it is reviewed and what each workflow delivers.
Explore demo ↗
Document Relay 01
OCR → review → integration
Extract data from scanned invoices with OCR, review it and send it to the receiving system.
View demo evidence 81 of 84 cases · Fictional invoicesFields correctly extracted before review
Explore workflow & evidence →
Explore demo ↗
Knowledge Atlas 02
Ask → retrieve → verify
A RAG assistant that searches your documents and answers with source references.
View demo evidence 16 of 16 cases · synthetic dataQueries with the expected source and page
Explore workflow & evidence →
Explore demo ↗
Heritage Atlas 03
Compatible photographs and three landmarks to explore in 3D.
View demo evidence 39 of 39 photos · Attributed public photographsPhotos registered across three independent models
Explore workflow & evidence →
Explore demo ↗
Line Inspector 04
Compare → locate → review
Inspect real circuit boards and review anomalies and errors.
View demo evidence 76 of 80 cases · Real images · VisAHeld-out images correctly classified
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Fieldnote Reports 05
Dictate → structure → export
Turn scattered notes into reports you can review.
View demo evidence 24 of 24 cases · synthetic dataCases with expected fact coverage
Explore workflow & evidence →
Explore demo ↗
Conversation Lens 06
Transcribe → review → summarise
Transcribe recordings and review their key information.
View demo evidence 12 of 12 cases · synthetic dataCases with expected fact coverage
Explore workflow & evidence → Independent demos with identified public or fictional inputs. Every case includes its evaluation and limitations.
02 / WHAT WE CAN BUILD
Fewer manual steps. More useful information. We connect models, software and human review around a specific team workflow.
01 OCR & document automation. Turn invoices and scanned documents into structured data with OCR. Review, validate and connect approved data to your systems.
OCR · Review · Reconciliation · APIs
Explore an example → 02 RAG assistants for your documents. Help your team query manuals and internal documents with answers supported by sources. We agree on scope, permissions and how to evaluate each answer.
Search · RAG · Sources · Tools
Explore an example → 03 Turn speech and notes into useful work. Prepare reports and conversation summaries your team can review, correct and export in an agreed format.
Transcription · Reports · Review · Export
Explore an example → A vision or 3D challenge? We also work with inspection, image matching, reconstruction and annotation.
See specialist work → Machine Learning Detect model drift, choose the next experiment and explore scientific patterns with four functional demos.
Explore all four cases →
03 / A PRACTICAL FIRST STEP
First, aproof of concept. Find out how AI fits your workflow before committing to a larger build. Start with a data sample and a question worth answering.
Scope my pilot ↗ A focused first milestone · Budget and timeline scoped together
WHAT YOU RECEIVE
01 Your goal, in writing Scope, deliverables and acceptance criteria agreed before building.
02 An outcome you can test An interface or API, usage examples and an evaluation on an agreed sample.
03 An informed decision Results, errors, limitations and a recommendation for the next step.
EXAMPLE ACCEPTANCE CHECK “Extract the agreed fields, flag uncertain data and export only what a person approves.”
HOW WE WORK
From your sample to a decision. A clear point of contact and technical review between teammates. We choose models for quality, cost, privacy and project requirements.
01 Understand Review the workflow, a sample and constraints. Identify what is worth automating.
02 Agree Define a first milestone, its cost, deliverables and how to check the outcome.
03 Build and measure Test the workflow, show its errors and deliver a reviewable demo or API.
04 Decide and connect Use the results to decide whether to expand, integrate or rethink the approach.
04 / THE TEAM
Talk to the engineers who will build it. We are Alejandro, Ander and Sergio. We combine AI, robotics and software development to turn an idea into a tool you can use and evaluate.
Machine Learning · RAG · Research
Alejandro Climent Peñalver AI engineer focused on RAG and machine learning. Combines document retrieval, generative AI and research to build solutions from data.
Education, experience and recognition Education Bachelor’s degree in Robotics Engineering. Master’s in Applied Artificial Intelligence · Universidad Carlos III de Madrid. Computer vision · OCR · Document AI
Ander García Hoyberg AI engineer focused on computer vision and document processing, from detection and segmentation to data extraction, review and integration.
Education, experience and recognition Audio · Multi-agent systems · Local models
Sergio García Muñoz AI engineer focused on audio, agents and local models. Designs transcription, analysis and speech synthesis systems with coordinated tools and private inference.
Education, experience and recognition Education Bachelor’s degree in Robotics Engineering · Universidad de Alicante. Master’s in Artificial Intelligence · Universidad de Alicante. TEAM BACKGROUND
Research. Engineering. Recognition.