Sr Engineers, Machine Learning
Frisco, TX - USA
Job Summary
At T-Mobile we invest in YOU! Our Total Rewards Package ensures that employees get the same big love we give our customers. All team members receive a competitive base salary and compensation package - this is Total Rewards. Employees enjoy multiple wealth-building opportunities through our annual stock grant employee stock purchase plan 401(k) and access to free year-round money coaches. Thats how were UNSTOPPABLE for our employees!
Position summaryT-Mobile is Americas supercharged Un-carrier delivering an advanced 4G LTE and transformative nationwide 5G network that will offer reliable connectivity for all. Sr Engineers Machine Learning located in Frisco Texas will enable systems for coding deploying and maintaining large-scale machine learning models throughout their lifecycle.
Position duties and responsibilities include but are not limited to:
Lead the architecture design and development of enterprise-scale machine learning and Generative AI systems ensuring alignment with T-Mobiles strategic business objectives.
Architect end-to-end ML pipelines including data ingestion feature engineering model training optimization and deployment using Python SQL and cloud-native ML services such as AWS SageMaker or Amazon Bedrock.
Design and implement production AI systems on cloud platforms (AWS GCP or Azure) making strategic technology selections for compute storage and inference infrastructure.
Develop and deploy autonomous AI agent architectures with Retrieval-Augmented Generation (RAG) capabilities for conversational AI intelligent assistants and enterprise task-automation applications.
Establish and drive organization-wide standards for MLOps practices including CI/CD pipelines model versioning monitoring and governance to ensure production reliability and compliance.
Evaluate emerging Generative AI technologies benchmark large language models and provide technical recommendations that influence T-Mobiles AI product roadmap.
Translate complex machine learning concepts and model behaviors into actionable insights for executive leadership and cross-functional business stakeholders.
Mentor and provide technical leadership to teams of data scientists and ML engineers fostering best practices in GenAI development and production deployment.
Collaborate with industry partners cloud providers and research communities to identify and adopt cutting-edge AI advancements.
Drive the successful delivery of advanced GenAI solutions including large language model applications conversational AI systems and intelligent automation platforms.
Skill requirements:
Experience (1) Experience developing and deploying enterprise-scale applications powered by Large Language Models including API integration with LLM providers (including OpenAI Anthropic Azure OpenAI or open-source models via Hugging Face) prompt engineering and response handling for production user-facing systems.
Experience (2) Experience implementing Retrieval-Augmented Generation (RAG) architectures in LLM applications including document ingestion pipelines embedding generation vector database integration and semantic retrieval systems for knowledge-based applications.
Experience (3) Experience designing and deploying NLP and semantic understandingsystems including Named Entity Recognition (NER) text classificationsemantic search and entity disambiguation on cloud platforms(AWS OCI or Azure).
Experience (4) Experience establishing MLOps/AIOps practices for production machine learning systems including containerized model serving infrastructure using Docker and Kubernetes for LLM inference at scale model optimization techniques (quantization distillation or runtime optimization) observability instrumentation and CI/CD pipeline implementation.
Experience (5) Experience fine-tuning Large Language Models using transfer learning few-shot learning or prompt engineering techniques for domain-specific applications and custom use cases.
Experience (6) Experience designing and implementing knowledge graph architectures or structured knowledge bases integrated with Large Language Models for enhanced reasoning entity disambiguation and information retrieval in enterprise applications.
Experience and education requirements:
PRIMARY REQUIREMENTS: Masters degree in Computer Science Statistics Informatics Information Systems Machine Learning or related and 3 years of relevant work experience.
ALTERNATIVE REQUIREMENTS: Bachelors degree in Computer Science Statistics Informatics Information Systems Machine Learning or related and 5 years of relevant work experience.
Telecommuting is permitted but applicant must work from the worksite location at least 3-4 days per week. No additional national or international travel is anticipated.
Additional:
Location: Frisco TX
This position is eligible for the employee referral program.
How to apply:
Visit .
Create a candidate profile and apply to requisition number REQ371161.
OTHER: Work hours: 40 hours/week. Salary: $146700 to $156700/year.
At least 18 years of age
Legally authorized to work in the United States
Travel:
Travel Required (Yes/No): No
DOT Regulated:
DOT Regulated Position (Yes/No): No
Safety Sensitive Position (Yes/No): No
Candidates pay will be based on various factors such as work location qualifications and experience. At T-Mobile employees in regular non-temporary roles are eligible for an annual bonus or periodic sales incentive or bonus based on their role. Most Corporate employees are eligible for a year-end bonus based on company and/or individual performance and which is set at a percentage of the employees eligible earnings in the prior year. Certain positions in Customer Care are eligible for monthly bonuses based on individual and/or team performance.
At T-Mobile our benefits exemplify the spirit of One Team Together! A big part of how we care for one another is working to ensure our benefits evolve to meet the needs of our team members. Full and part-time employees have access to the same benefits when eligible. We cover all of the bases offering medical dental and vision insurance a flexible spending account 401(k) employee stock grants employee stock purchase plan paid time off and up to 12 paid holidays - which total about 4 weeks for new full-time employees and about 2.5 weeks for new part-time employees annually - paid parental and family leave family building benefits back-up care enhanced family support childcare subsidy tuition assistance college coaching short- and long-term disability voluntary AD&D coverage voluntary accident coverage voluntary life insurance voluntary disability insurance and voluntary long-term care insurance. We dont stop there - eligible employees can also receive mobile service & home internet discounts pet insurance and access to commuter and transit programs! To learn about T-Mobiles amazing benefits check out.
Never stop growing!Required Experience:
Senior IC
About Company
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