Pipeline run
87a15fd7-b360-4285-9021-f05ec8a14e48
Pipeline LLM cost (USD)
API 1: $0.0047
API 2: $0.0000
API 3: $0.0000
Total: $0.0047
Client output enrichment
v2 Skill cluster · Nature of work · AI index · Tech stack maturity · Evidence · KRA descriptionNature of work
· Data Infrastructure & Engineering
Build and operate cloud data/ML infrastructure: design time-series storage, run ETL/ELT on AWS/Azure, wire CI/CD and MLOps deployments, monitor pipelines/services, and handle releases, Sev1 incidents, and RCA.
"Design and develop scalable solutions for storing and retrieving high-volume time-series data."
Tech stack maturity
Modern Cloud Native
The skill mix centers on Kubernetes, Terraform, AWS/Azure, CI/CD, observability, Kafka, Spark, and MLOps tooling, which is characteristic of modern cloud-native architecture.
AI index (0 = no AI use, 5 = totally AI-dependent · v2.1)
1.70 / 5
· Title match
✓ Has AI skill
✓ AI skill (primary)
· AI skill (secondary)
· On AI team
· Builds AI products
vocab breakdown (legacy)
Assistants (×1):
—
Frameworks (×2):
—
Models / concepts (×3):
MLOps, ML
Evidence — skills matched in JD (29)
AWS
Azure
Spark
Kafka
Kinesis
Azure Data Factory
MLflow
Jenkins
GitHub Actions
Terraform
Prometheus
Grafana
S3
Blob Storage
SQL
Python
Java
Scala
Kubernetes
CI/CD
MLOps
ETL
ELT
Big Data
Databricks
+4
Skill cluster (13 dimension groups, role-scoped)
Cloud Provider Platforms
AWS
Azure
Observability and Operations
Prometheus
Grafana
Asynchronous Messaging and Event Streaming
Kafka
CI/CD for Machine Learning
MLOps
Cloud Platforms
S3
Configuration Management
Ansible
Container Orchestration Platforms
Kubernetes
Infrastructure as Code
Terraform
Java Language and JVM
Java
Programming Languages for Data Work
Scala
Python Programming
Python
Site Troubleshooting and Debugging
Root cause analysis
Cross-cutting / unaligned
Spark
Kinesis
Azure Data Factory
MLflow
Jenkins
GitHub Actions
Blob Storage
SQL
CI/CD
ETL
ELT
Big Data
Databricks
Time-series data
Container orchestration
Show KRA description ↓
• Data Infrastructure & Engineering: Design and develop scalable solutions for storing and retrieving high-volume time-series data. Build robust ETL/ELT pipelines using AWS and Azure big data tools (e.g., Spark, Kafka, Kinesis, Azure Data Factory).
• CI/CD & MLOps: Develop and manage CI/CD pipelines for ML models and data infrastructure using MLflow, Jenkins, GitHub Actions, and Terraform. Enable reproducible, secure, and scalable deployments.
• Monitoring & Automation: Implement end-to-end monitoring for infrastructure, data pipelines, and ML services using Prometheus, Grafana, and custom alerting tools. Automate workflows to ensure high availability and zero-downtime deployments.
• Release & Incident Management: Manage releases across staging and production environments. Respond to Severity 1 incidents, lead root cause analysis (RCA), and implement permanent fixes.
• Collaboration & Process Improvement: Work with product teams to deploy releases, resolve customer escalations, and drive automation to improve onboarding and integration timelines.
• Analytics Enablement: Build tools to deliver insights into customer acquisition, operational efficiency, and business KPIs.
• Education & Certification: Bachelor’s or Master’s in Engineering with 4+ years in SRE or related roles. AWS Solution Architect Associate or Azure certification preferred. Familiarity with DevOps tools like Jenkins, Terraform, Ansible.
• Technical Skills: Strong experience with cloud platforms (AWS, Azure), big data technologies (Spark, Kafka, Databricks), and data storage (S3, Blob Storage). Proficient in SQL, Python, Java/Scala, and container orchestration (Kubernetes preferred).
• Soft Skills: Excellent communication, documentation, and time management. Strong problem-solving and customer-handling capabilities.
• Problem Solving & RCA
• Technical Expertise in Cloud & Data Engineering
• Cross-functional Collaboration
• Adaptability to evolving tech
• Customer Focus & Escalation Management
• Innovation & Automation
• Analytical Thinking & Process Optimization
Signals
Skill
ml-engineer
0.38
Alias
devops-engineer
0.39
KRA
cloud-architect
0.46
Post-classification
Centroidupdated · n=5
Alias collision log#40
New-role queue—
New skills captured10
New KRA captured—
Captured for admin review
Spark
primary
↔
Cloud Architect
pending
Kinesis
primary
↔
Cloud Architect
pending
Azure Data Factory
primary
↔
Cloud Architect
pending
Blob Storage
primary
↔
Cloud Architect
pending
ETL
primary
↔
Cloud Architect
pending
ELT
primary
↔
Cloud Architect
pending
Big Data
primary
↔
Cloud Architect
pending
Time-series data
↔
Cloud Architect
pending
Container orchestration
↔
Cloud Architect
pending
Root cause analysis
↔
Cloud Architect
pending
Status:
extract_from_jd_done
Created: 2026-05-19T00:38:58.147153Z
Updated: 2026-05-19T00:38:59.187301Z
Flow
Current 3-step pipeline
1 POST /skills/extract-from-jd
2 POST /skills/extract-details
3 POST /skills/final-role-output
Role
Chosen role & resolution
No chosen role stored for this run.
Job description
Site Reliability Engineer Vestas is the world leader in wind technology and a Defining-force in the development of the wind power industry. Vestas’ core business comprises the development, manufacture, sale, marketing and maintenance of Wind Turbines. Come and Join us at Vestas! Service > Global Service Operations > Security & Platform, Product and Model Operation The Site Reliability Engineer will ensure the high availability, performance, and reliability of our Scipher platform's infrastructure, supporting seamless operations and customer experiences. The right candidate for the position will bring expertise in incident management, coupled with strong problem-solving abilities and collaboration with development teams to ensure uninterrupted access to our Scipher products' offerings and enhancing overall customer satisfaction. We count on our site reliability engineers (SREs) to empower users with a rich feature set, high availability, and stellar performance level to pursue their missions. As we expand customer deployments, we are seeking an experienced Site Reliability Engineer to deliver insights from massive-scale data in real time. Specifically, the incumbent will be someone who has fresh ideas and a unique viewpoint, and who enjoys collaborating with a cross-functional team to develop real-world solutions and positive user experiences for every interaction. This Site Reliability Engineer position reports to Operations Manager. This position is based in our Bengaluru, India office. Responsibilities • Data Infrastructure & Engineering: Design and develop scalable solutions for storing and retrieving high-volume time-series data. Build robust ETL/ELT pipelines using AWS and Azure big data tools (e.g., Spark, Kafka, Kinesis, Azure Data Factory). • CI/CD & MLOps: Develop and manage CI/CD pipelines for ML models and data infrastructure using MLflow, Jenkins, GitHub Actions, and Terraform. Enable reproducible, secure, and scalable deployments. • Monitoring & Automation: Implement end-to-end monitoring for infrastructure, data pipelines, and ML services using Prometheus, Grafana, and custom alerting tools. Automate workflows to ensure high availability and zero-downtime deployments. • Release & Incident Management: Manage releases across staging and production environments. Respond to Severity 1 incidents, lead root cause analysis (RCA), and implement permanent fixes. • Collaboration & Process Improvement: Work with product teams to deploy releases, resolve customer escalations, and drive automation to improve onboarding and integration timelines. • Analytics Enablement: Build tools to deliver insights into customer acquisition, operational efficiency, and business KPIs. Qualifications • Education & Certification: Bachelor’s or Master’s in Engineering with 4+ years in SRE or related roles. AWS Solution Architect Associate or Azure certification preferred. Familiarity with DevOps tools like Jenkins, Terraform, Ansible. • Technical Skills: Strong experience with cloud platforms (AWS, Azure), big data technologies (Spark, Kafka, Databricks), and data storage (S3, Blob Storage). Proficient in SQL, Python, Java/Scala, and container orchestration (Kubernetes preferred). • Soft Skills: Excellent communication, documentation, and time management. Strong problem-solving and customer-handling capabilities. Competencies • Problem Solving & RCA • Technical Expertise in Cloud & Data Engineering • Cross-functional Collaboration • Adaptability to evolving tech • Customer Focus & Escalation Management • Innovation & Automation • Analytical Thinking & Process Optimization What We Offer You will be a part of a highly dedicated team motivated by creating business value and by developing innovative technical solutions. We offer a place where your dreams of constantly learning can come true. We offer an informal and agile workplace with a high level of freedom in defining the way forward. We expect a lot of our team members when it comes to taking responsibility and ownership of tasks and deadlines, but we stand shoulder by shoulder when celebrating our achievements and mitigating our failures. Additional Information The work location is in Bengaluru, India. Please note: We do amend or withdraw our jobs and reserve the right to do so at any time, including prior to the advertised closing date. Please be advised to apply on or before 30th September 2025. Learn more about Vestas at www.vestas.com and follow us on our social media channels. BEWARE – RECRUITMENT FRAUD It has come to our attention that there are a number of fraudulent emails from people pretending to work for Vestas. Read more via this link, https://www.vestas.com/en/careers/our-recruitment-process DEIB Statement At Vestas, we recognise the value of diversity, equity, and inclusion in driving innovation and success. We strongly encourage individuals from all backgrounds to apply, particularly those who may hesitate due to their identity or feel they do not meet every criterion. As our CEO states, "Expertise and talent come in many forms, and a diverse workforce enhances our ability to think differently and solve the complex challenges of our industry". Your unique perspective is what will help us powering the solution for a sustainable, green energy future. About Vestas Vestas is the energy industry’s global partner on sustainable energy solutions. We are specialised in designing, manufacturing, installing, and servicing wind turbines, both onshore and offshore. Across the globe, we have installed more wind power than anyone else. We consider ourselves pioneers within the industry, as we continuously aim to design new solutions and technologies to create a more sustainable future for all of us. With more than 185 GW of wind power installed worldwide and 40+ years of experience in wind energy, we have an unmatched track record demonstrating our expertise within the field. With 30,000 employees globally, we are a diverse team united by a common goal: to power the solution – today, tomorrow, and far into the future. Vestas promotes a diverse workforce which embraces all social identities and is free of any discrimination. We commit to create and sustain an environment that acknowledges and harvests different experiences, skills, and perspectives. We also aim to give everyone equal access to opportunity. To learn more about our company and life at Vestas, we invite you to visit our website at www.vestas.com and follow us on our social media channels. We also encourage you to join our Talent Universe to receive notifications on new and relevant postings.
Skills from this JD
Each row merges API 1 extraction, API 2 library match / v3 orchestration (dimensions + locked dims), and API 3 persistence tags.
AWS
Primary
No API 2 row (run stopped after API 1 or history missing)
Azure
Primary
No API 2 row (run stopped after API 1 or history missing)
Spark
Primary
No API 2 row (run stopped after API 1 or history missing)
Kafka
Primary
No API 2 row (run stopped after API 1 or history missing)
Kinesis
Primary
No API 2 row (run stopped after API 1 or history missing)
Azure Data Factory
Primary
No API 2 row (run stopped after API 1 or history missing)
MLflow
Primary
No API 2 row (run stopped after API 1 or history missing)
Jenkins
Primary
No API 2 row (run stopped after API 1 or history missing)
GitHub Actions
Primary
No API 2 row (run stopped after API 1 or history missing)
Terraform
Primary
No API 2 row (run stopped after API 1 or history missing)
Prometheus
Primary
No API 2 row (run stopped after API 1 or history missing)
Grafana
Primary
No API 2 row (run stopped after API 1 or history missing)
S3
Primary
No API 2 row (run stopped after API 1 or history missing)
Blob Storage
Primary
No API 2 row (run stopped after API 1 or history missing)
SQL
Primary
No API 2 row (run stopped after API 1 or history missing)
Python
Primary
No API 2 row (run stopped after API 1 or history missing)
Java
Primary
No API 2 row (run stopped after API 1 or history missing)
Scala
Primary
No API 2 row (run stopped after API 1 or history missing)
Kubernetes
Primary
No API 2 row (run stopped after API 1 or history missing)
Databricks
Secondary
No API 2 row (run stopped after API 1 or history missing)
Ansible
Secondary
No API 2 row (run stopped after API 1 or history missing)
CI/CD
Primary
No API 2 row (run stopped after API 1 or history missing)
MLOps
Primary
No API 2 row (run stopped after API 1 or history missing)
ETL
Primary
No API 2 row (run stopped after API 1 or history missing)
ELT
Primary
No API 2 row (run stopped after API 1 or history missing)
Big Data
Primary
No API 2 row (run stopped after API 1 or history missing)
Time-series data
Secondary
No API 2 row (run stopped after API 1 or history missing)
Container orchestration
Secondary
No API 2 row (run stopped after API 1 or history missing)
Root cause analysis
Secondary
No API 2 row (run stopped after API 1 or history missing)
Library artifacts (this run)
No artifact rows for this run.
nano JD Parser — gpt-4.1-nano click to toggle
RoleSite Reliability Engineer
CompanyVestas
Experience4+ years in SRE or related roles
DomainEnergy & Utilities
Location
Bengaluru, India
(onsite)
JD type
pass
Certifications
AWS Solution Architect Associate
Azure certification
Show raw JSON
{
"JD_type": "pass",
"about_company": {
"source_marker": {
"first_5_words": "Vestas is the energy industry\u2019s",
"last_5_words": "equal access to opportunity."
},
"text": "Vestas is the energy industry\u2019s global partner on sustainable energy solutions. We are specialised in designing, manufacturing, installing, and servicing wind turbines, both onshore and offshore.\n\nAcross the globe, we have installed more wind power than anyone else. We consider ourselves pioneers within the industry, as we continuously aim to design new solutions and technologies to create a more sustainable future for all of us. With more than 185 GW of wind power installed worldwide and 40+ years of experience in wind energy, we have an unmatched track record demonstrating our expertise within the field.\n\nWith 30,000 employees globally, we are a diverse team united by a common goal: to power the solution \u2013 today, tomorrow, and far into the future.\n\nVestas promotes a diverse workforce which embraces all social identities and is free of any discrimination. We commit to create and sustain an environment that acknowledges and harvests different experiences, skills, and perspectives. We also aim to give everyone equal access to opportunity.",
"word_count": 186
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"education": [
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"raw": "Bachelor\u2019s or Master\u2019s in Engineering",
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"experience": {
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"job_locations": [
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"role_archetype": "DevOps",
"roles_and_responsibilities": [
{
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"first_5_words": "\u2022 Data Infrastructure \u0026 Engineering:",
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},
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"source_marker": {
"first_5_words": "\u2022 Education \u0026 Certification: Bachelor\u2019s",
"last_5_words": "and customer-handling capabilities."
},
"text": "\u2022 Education \u0026 Certification: Bachelor\u2019s or Master\u2019s in Engineering with 4+ years in SRE or related roles. AWS Solution Architect Associate or Azure certification preferred. Familiarity with DevOps tools like Jenkins, Terraform, Ansible.\n\u2022 Technical Skills: Strong experience with cloud platforms (AWS, Azure), big data technologies (Spark, Kafka, Databricks), and data storage (S3, Blob Storage). Proficient in SQL, Python, Java/Scala, and container orchestration (Kubernetes preferred).\n\u2022 Soft Skills: Excellent communication, documentation, and time management. Strong problem-solving and customer-handling capabilities.",
"word_count": 83
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{
"bullet_count": 7,
"heading": "Competencies",
"heading_was_present": true,
"source_marker": {
"first_5_words": "\u2022 Problem Solving \u0026 RCA",
"last_5_words": "and Process Optimization"
},
"text": "\u2022 Problem Solving \u0026 RCA\n\u2022 Technical Expertise in Cloud \u0026 Data Engineering\n\u2022 Cross-functional Collaboration\n\u2022 Adaptability to evolving tech\n\u2022 Customer Focus \u0026 Escalation Management\n\u2022 Innovation \u0026 Automation\n\u2022 Analytical Thinking \u0026 Process Optimization",
"word_count": 34
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],
"urls": [
{
"type": "other",
"url": "https://www.vestas.com/en/careers/our-recruitment-process"
},
{
"type": "website",
"url": "http://www.vestas.com"
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]
}
API 1 — extract-from-jd click to toggle
{
"final_skills": [
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},
{
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{
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{
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{
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{
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{
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{
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{
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],
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{
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{
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"source_marker": {
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"last_5_words": "and Process Optimization"
},
"text": "\u2022 Problem Solving \u0026 RCA\n\u2022 Technical Expertise in Cloud \u0026 Data Engineering\n\u2022 Cross-functional Collaboration\n\u2022 Adaptability to evolving tech\n\u2022 Customer Focus \u0026 Escalation Management\n\u2022 Innovation \u0026 Automation\n\u2022 Analytical Thinking \u0026 Process Optimization",
"word_count": 34
}
],
"urls": [
{
"type": "other",
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},
{
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}
]
},
"rejected": false,
"rejection_reason": null,
"run_id": "87a15fd7-b360-4285-9021-f05ec8a14e48",
"stage3_signals": {
"alias_match_roles": [
{
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"matched_count": null,
"role_id": 10,
"score": 0.3871,
"slug": "devops-engineer",
"total_count": null
},
{
"display_name": "AR/VR Engineer",
"matched_count": null,
"role_id": 8,
"score": 0.3784,
"slug": "ar-vr-engineer",
"total_count": null
},
{
"display_name": "Cybersecurity Engineer",
"matched_count": null,
"role_id": 5,
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"slug": "cybersecurity-engineer",
"total_count": null
},
{
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{
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}
],
"kra_match_roles": [
{
"display_name": "Cloud Architect",
"matched_count": null,
"role_id": 9,
"score": 0.4561,
"slug": "cloud-architect",
"total_count": null
},
{
"display_name": "Data Engineer",
"matched_count": null,
"role_id": 2,
"score": 0.4218,
"slug": "data-engineer",
"total_count": null
},
{
"display_name": "Cybersecurity Engineer",
"matched_count": null,
"role_id": 5,
"score": 0.417,
"slug": "cybersecurity-engineer",
"total_count": null
},
{
"display_name": "DevOps Engineer",
"matched_count": null,
"role_id": 10,
"score": 0.4164,
"slug": "devops-engineer",
"total_count": null
},
{
"display_name": "Backend Engineer",
"matched_count": null,
"role_id": 1,
"score": 0.4017,
"slug": "backend-engineer",
"total_count": null
}
],
"skill_match_roles": [
{
"display_name": "ML Engineer",
"matched_count": 11,
"role_id": 3,
"score": 0.3793,
"slug": "ml-engineer",
"total_count": 29
},
{
"display_name": "DevOps Engineer",
"matched_count": 11,
"role_id": 10,
"score": 0.3793,
"slug": "devops-engineer",
"total_count": 29
},
{
"display_name": "Data Engineer",
"matched_count": 9,
"role_id": 2,
"score": 0.3103,
"slug": "data-engineer",
"total_count": 29
},
{
"display_name": "Backend Engineer",
"matched_count": 8,
"role_id": 1,
"score": 0.2759,
"slug": "backend-engineer",
"total_count": 29
},
{
"display_name": "Cloud Architect",
"matched_count": 7,
"role_id": 9,
"score": 0.2414,
"slug": "cloud-architect",
"total_count": 29
}
],
"stage35_ran": false
},
"stage4_decision": {
"alias_collision_detected": true,
"case": "B",
"chosen_role": {
"display_name": "Cloud Architect",
"matched_count": null,
"role_id": 9,
"score": 0.4561,
"slug": "cloud-architect",
"total_count": null
},
"confidence": 0.4561,
"llm2_fired": false,
"llm2_reasoning": null,
"queued": false,
"reasoning": "Stage 1 title \u0027Site Reliability Engineer\u0027 not in catalog; KRA top-2 within margin -\u003e classify into nearest neighbor cloud-architect (0.46)"
},
"stage5_updates": {
"centroid_n_after": 5,
"centroid_updated": true,
"collision_log_id": 40,
"new_kra_attached": null,
"new_skills_attached": [
{
"is_primary": true,
"queue_id": 750,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Spark",
"status": "pending"
},
{
"is_primary": true,
"queue_id": 751,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Kinesis",
"status": "pending"
},
{
"is_primary": true,
"queue_id": 752,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Azure Data Factory",
"status": "pending"
},
{
"is_primary": true,
"queue_id": 753,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Blob Storage",
"status": "pending"
},
{
"is_primary": true,
"queue_id": 754,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "ETL",
"status": "pending"
},
{
"is_primary": true,
"queue_id": 755,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "ELT",
"status": "pending"
},
{
"is_primary": true,
"queue_id": 756,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Big Data",
"status": "pending"
},
{
"is_primary": false,
"queue_id": 757,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Time-series data",
"status": "pending"
},
{
"is_primary": false,
"queue_id": 758,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Container orchestration",
"status": "pending"
},
{
"is_primary": false,
"queue_id": 759,
"role_display_name": "Cloud Architect",
"role_slug": "cloud-architect",
"skill_name": "Root cause analysis",
"status": "pending"
}
],
"queue_entry_id": null,
"v3_pipeline_triggered": false,
"v3_role_slug": null,
"v3_run_id": null
}
}
API 2 — extract-details
{}
API 3 — final-role-output
{}
LLM Calls
Every model call made for this run, in pipeline order. Click a card to see the model's response.
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