JSON schema: extract a resume
JSON Schema to extract a resume with an LLM: experience, skills, education and certifications. Leaves out age, photo and other protected data.
Extract the resume data. Invent nothing: if information is missing, leave the field empty. Never infer age, race, religion, national origin, marital status, pregnancy or disability: these are protected characteristics under U.S. equal employment law.
JSON Schema
{
"type": "object",
"required": [
"name",
"experience",
"skills"
],
"properties": {
"name": {
"type": "string"
},
"skills": {
"type": "array",
"items": {
"type": "string"
}
},
"headline": {
"type": "string",
"description": "Current or target job title"
},
"education": {
"type": "array",
"items": {
"type": "object",
"properties": {
"year": {
"type": "string"
},
"degree": {
"type": "string"
},
"school": {
"type": "string"
}
}
}
},
"experience": {
"type": "array",
"items": {
"type": "object",
"required": [
"title",
"company"
],
"properties": {
"end": {
"type": "string"
},
"start": {
"type": "string"
},
"title": {
"type": "string"
},
"company": {
"type": "string"
}
}
}
},
"certifications": {
"type": "array",
"items": {
"type": "string"
}
},
"years_of_experience": {
"type": "number"
}
}
}Geschätzte Kosten
Eingabe-Tokens pro Aufruf : ≈ 554
| Modell | Pro Aufruf | Pro 1.000 Aufrufe |
|---|---|---|
| Mistral Large · Mistral AI | 0,00024 € | 0,24 € |
| DeepSeek Flash · DeepSeek | 0,00015 € | 0,15 € |
| DeepSeek V4 Pro · DeepSeek | 0,00064 € | 0,64 € |
| GPT-6 Luna · OpenAI | 0,00005 € | 0,05 € |
| GPT-6 Sol · OpenAI | 0,00098 € | 0,98 € |
| Claude Sonnet 5.5 · Anthropic | 0,00098 € | 0,98 € |
| Claude Opus 5.5 · Anthropic | 0,00195 € | 1,95 € |
| Selbst gehostetes Open-Source-Modell (Ollama, vLLM) | 0 € API-Kosten (nur Serverkosten) | |
Nur Eingabekosten, ohne die Antwort des Modells. Öffentliche Standardpreise der Anbieter (Mistral AI, DeepSeek, OpenAI, Anthropic) von USD in Euro umgerechnet zum EZB-Kurs vom 29. September 2026. Schätzung: 1 Token ≈ 3,6 Zeichen.
Common to all 3 regions
Created by the author, no outside source.
Commercial use allowed · credit the author · changes allowed.
Text or data only: no access to files, network or commands.
Hosted in France (Scaleway, Paris). No transfer outside the EU.
European Union · 5/5
No personal data.
No training data: no summary required.
United States · 5/5
No personal data.
No training data: no documentation to publish.
China · 5/5
No personal data.
No training data; AI-generated content published in China must be labelled (2025).
Indicative summary as of 30/09/2026, not a legal certification. Method and sources →
Statistiken
Gefällt mir : 0 · Kommentare : 0
Klicken Sie auf einen Zähler, um ihn ein- oder auszublenden; fahren Sie über das Diagramm für Details. Ein Aufruf pro Besucher und Tag, ohne Bots; Zählung seit dem 30. September 2026.
- Kennung
- contextetech--extract-resume
- Typ
- Ausgabeschemas
- Datei
- extract-resume.schema.json
- Format
- JSON (application/json)
- Größe
- 1.292 Bytes (1,3 KB)
- Kodierung
- UTF-8
- Geschätzte Tokens
- ≈ 359
- Sprache
- Englisch
- Lizenz
- MIT
- Kommerzielle Nutzung
- Erlaubt
- Personenbezogene Daten
- Keine
- Version
- 1.0
- Veröffentlicht am
- 2. Oktober 2026 um 21:54
- Aktualisiert am
- 2. Oktober 2026 um 21:54
- Speicherung
- in der Datenbank
- Nutzungen
- 0
- Gefällt mir
- 0
extract-resume.schema.json
{
"type": "object",
"required": [
"name",
"experience",
"skills"
],
"properties": {
"name": {
"type": "string"
},
"skills": {
"type": "array",
"items": {
"type": "string"
}
},
"headline": {
"type": "string",
"description": "Current or target job title"
},
"education": {
"type": "array",
"items": {
"type": "object",
"properties": {
"year": {
"type": "string"
},
"degree": {
"type": "string"
},
"school": {
"type": "string"
}
}
}
},
"experience": {
"type": "array",
"items": {
"type": "object",
"required": [
"title",
"company"
],
"properties": {
"end": {
"type": "string"
},
"start": {
"type": "string"
},
"title": {
"type": "string"
},
"company": {
"type": "string"
}
}
}
},
"certifications": {
"type": "array",
"items": {
"type": "string"
}
},
"years_of_experience": {
"type": "number"
}
}
}Anthropic-API (Python)
import json, anthropic
schema = json.load(open("extract-resume.schema.json"))
client = anthropic.Anthropic()
resp = client.messages.create(model="claude-sonnet-5", max_tokens=1024,
tools=[{"name": "extraire", "description": "Renvoie les données extraites", "input_schema": schema}],
tool_choice={"type": "tool", "name": "extraire"},
messages=[{"role": "user", "content": "deine Eingabe hier"}])
print(resp.content[0].input)OpenAI-Format (response_format)
{
"type": "json_schema",
"json_schema": {
"name": "extract-resume",
"schema": {
"type": "object",
"required": [
"name",
"experience",
"skills"
],
"properties": {
"name": {
"type": "string"
},
"skills": {
"type": "array",
"items": {
"type": "string"
}
},
"headline": {
"type": "string",
"description": "Current or target job title"
},
"education": {
"type": "array",
"items": {
"type": "object",
"properties": {
"year": {
"type": "string"
},
"degree": {
"type": "string"
},
"school": {
"type": "string"
}
}
}
},
"experience": {
"type": "array",
"items": {
"type": "object",
"required": [
"title",
"company"
],
"properties": {
"end": {
"type": "string"
},
"start": {
"type": "string"
},
"title": {
"type": "string"
},
"company": {
"type": "string"
}
}
}
},
"certifications": {
"type": "array",
"items": {
"type": "string"
}
},
"years_of_experience": {
"type": "number"
}
}
},
"strict": true
}
}
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