Sr Specialist Quality/M&P/Process - AI Training Manager
Listed on 2026-07-19
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IT/Tech
AI Engineer (Applied/Software), Data Analyst, AI Evaluation
Sr Specialist Quality/M&P/Process - AI Training Manager
This position requires office presence of a minimum of five days per week and is only located in the location(s) posted. No relocation is offered.
At AT&T, we empower leaders to drive change in a fast-evolving, connected world. Your strategic vision will help serve customers and transform lives through innovative solutions and impactful connections.
The Sr Specialist Quality/M&P/Process - AI Training Manager is responsible for overseeing the training, validation, and continuous improvement of Agentic Capabilities—AI-powered agents designed to autonomously process a variety of ticket types within workflow management systems. This role owns AI agent quality: ensuring reliable, high-quality outcomes; rapidly reviewing and resolving exception ("fallout") tickets; applying corrections and re-ingesting updates; improving training data and fine-tuning artifacts;
updating the agent knowledge base; and rerunning tickets to validate fixes—continuously strengthening agentic capabilities.
- Monitor the performance of Agentic Capabilities as they autonomously process various ticket types.
- Ensure seamless integration of AI agents into new or existing workflows, optimizing for efficiency and accuracy.
- Review fallout tickets (cases where AI agents cannot resolve issues) within a workflow management tool.
- Diagnose root causes, make necessary corrections, and re-ingest updated information to the AI system.
- Ensure all fallout tickets are actioned within a 48-hour window; unresolved tickets revert to the human-worked queue.
- Analyze fallout patterns to identify knowledge gaps, process inefficiencies, or opportunities for AI improvement.
- Develop and implement training protocols to enhance Agentic Capabilities, leveraging prompt engineering, model validation, and knowledge base updates.
- Collaborate with cross-functional teams (product, engineering, support) to align AI behaviors with business needs and compliance requirements.
- Maintain and update the agent knowledge base, ensuring accurate, current, and comprehensive content for AI agents.
- Document training methodologies, ticket resolutions, and process improvements for knowledge sharing and auditing.
- Validate AI performance through systematic review, testing, and user/stakeholder feedback.
- Ensure all processes comply with regulatory standards, ethical guidelines, and company policies.
- Track and report on key metrics: ticket resolution rates, fallout frequency, review turnaround times, and AI improvement outcomes.
- Communicate insights, best practices, and recommendations to stakeholders and leadership.
- Understanding of the business function and M&Ps align AI behavior with policy and process; plus knowledge of supported workflows and tools with experience operating the systems involved (e.g., ticketing/workflow platforms).
- Strong analytical and problem-solving skills with meticulous attention to detail; proven root cause analysis (RCA) capability.
- General AI literacy and understanding of agentic systems; basic prompt engineering (iteration, testing, versioning).
- Ability to manage fallout within SLAs, triage tickets, and drive rapid resolution; strong prioritization in fast-paced environments.
- Observability: proficiency with logs, metrics, dashboards, and alerts; define and track quality KPIs (accuracy, fallout rate, MTTR).
- Basic scripting understanding to automate corrections, content re-ingestion, and validation workflows.
- Knowledge base authoring and maintenance; clear documentation of training methods, resolutions, and changes for auditability.
- Compliance/data privacy/ethical guidelines awareness; maintain auditable processes and change logs.
- Effective communication: synthesize findings, report metrics, and present recommendations to stakeholders.
- Advanced observability (distributed tracing, SLO/SLA design) and incident response practices.
- Experiment tracking and ML operations tooling, feature flags, canary/rollback strategies.
- Familiarity with fine-tuning pipelines, retrieval/RAG, vector databases, and content ingestion pipelines.
- SQL/BI tools for advanced analytics and…
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