AI Data Quality Analyst

Crescendo Staffing and Business Consulting Inc.

₱64-95K[Monthly]
Remote1-3 Yrs ExpBachelorFull-time
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Remote Details

Open CountryWorldwide

Language RequirementsEnglish

Job Description

Benefits

  • Insurance Health & Wellness

    Health Insurance

  • Time Off & Leave

    Paid Time Off, Government Mandated Leave

Data Quality Specialist – AI/ML / Data Annotation

Job Requirements

  • 2+ years of experience in data quality management, data operations, or related roles within AI/ML or data annotation environments.
  • Experienced in data annotation processes, quality assurance methodologies, and statistical quality metrics (e.g., F1 score, inter-annotator agreement).
  • Proficiency with annotation and QA tools (e.g., Labelbox, Dataloop, LabelStudio).
  • Familiarity with the core concepts of AI/ML pipelines, including data preparation, model training, and evaluation.


Responsibilities

Data Analysis

  • Quality Audits: Perform quality audits on annotated datasets to ensure that they meet established guidelines and quality benchmarks.
  • Statistical Reporting: Leverage statistical-based quality metrics such as F1 score and inter-annotator agreement to evaluate data quality.
  • Root Cause Analysis: Analyze annotation errors, trends, project processes, and project documentation to identify and understand the root cause of errors and propose remediation strategies.
  • Edge-Case Management: Resolve and analyze edge-case annotations to ensure quality and identify areas for improvement.
  • Tooling: Become proficient in using annotation and quality control tools to perform reviews and track quality metrics.
  • Guidelines: Become an expert in the project-specific guidelines and provide feedback for potential clarifications or improvements.

Continuous Improvement

  • Automation: Identify opportunities to use automation to enhance analytics, provide deeper insights, and improve efficiency.
  • Documentation: Develop and maintain up-to-date documentation on quality standards, annotation guidelines, and quality control procedures.
  • Feedback: Provide regular feedback that identifies areas for improvement across the annotation pipeline.

Collaboration & Communication

  • Cross-Functional Teamwork: Work closely with key project stakeholders and clients to understand project requirements and improve annotation pipelines.
  • Training: Assist with training annotators, providing guidance, feedback, and support to ensure data quality.
  • Reporting: Provide regular updates that highlight data quality metrics, key findings, and actionable insights for continuous process improvements.
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Maylene Diwa

HR ManagerCrescendo Staffing and Business Consulting Inc.

Reply 9 Times Today

Posted on 15 January 2026

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