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Job description

Scope


  • Translate business goals into measurable ML goals (KPIs, acceptance thresholds) in collaboration with PMs and data scientists.


  • Own the full lifecycle from prototyping (incl. deep learning and GenAI) to deployment and monitoring.


  • Develop and maintain observability dashboards and alerts tied to ML metrics and feature drift.


  • Run and safeguard models in real time


  • Pilot new ML tools/frameworks, leading integration into production where appropriate.


  • Act as a cross-org ML thought leader—aligning product, infra, legal, and UX on responsible ML.


Key Deliverables by Level


Level 1


AI/ML Engineer I


  • Cleaned, annotated, and pre-processed datasets for supervised learning models


  • Simple machine learning models (e.g., logistic regression, decision trees) implemented under guidance


  • Exploratory data analysis reports


  • Jupyter notebooks documenting model experiments


  • Unit-tested ML scripts


  • Essential Duties and Responsibilities (All Levels):


  • Assist in data cleaning, feature engineering, testing basic ML models, write and debug simple scripts


  • Develop ML modules, assist in deployment, support data pipelines, contribute to documentation and unit testing


  • Support data preparation, model training under guidance, debug code, attend knowledge sessions


  • Develop and maintain smaller AI modules (e.g., anomaly detection), assist in deployments, write technical documentation


  • Lead development of scalable ML models, integrate into ITSM systems, ensure compliance and performance metricsArchitect end-to-end AI platforms, oversee cross-domain projects (e.g., NLP for service desk, CV for asset tracking)


Education and/or Work Experience Requirements


Minimum Requirements


  • Bachelor’s degree in Computer Science,Data Science, IT, or a related field.Master’s preferred or equivalent experience for senior levels


  • Level 1: 1–2 years in data science/ML roles; hands-on with frameworks like scikit-learn or PyTorch


  • Programming: Python (must), Java/C++ (optional), SQL, Apps Script, ServiceNow


  • Frameworks: TensorFlow, PyTorch, scikit-learn, HuggingFace


  • Tools: Git, Docker, Kubernetes, Airflow, MLflow,Jupyter, Postman


  • Data pipeline skills: SQL, Pandas, data APIs


  • Deployment: Flask/FastAPI, CI/CD, REST APIs, cloud functions


  • Strong analytical and debugging skills


  • Translate business problems into AI solutions


  • Communicate effectively with technical and non-technical stakeholders


  • Work under Agile or DevOps-based workflows


  • Stay current with research and emerging technologies


  • Rapidly learn new AI concepts and tools


  • Translate business challenges into ML solutions


  • Communicate technical findings to non-technical stakeholders


  • Handle ambiguity and balance research with delivery


  • Collaborate across globally distributed teams 


Competencies


  • Each level, 1 - 5, represents a progression in complexity, autonomy, and responsibility. The higher the level, the more critical thinking, leadership, and expertise are required.


  • Technical Expertise


  • Understands basic ML/DL principles


  • Codes in Python/R


  • Familiarity with AI/ML tools such as Jupyter, scikit-learn, or TensorFlow (basic use)


  • Applies supervised/unsupervised ML methods


  • Proficient in TensorFlow/PyTorch


  • Uses cloud ML services


  • Familiar with ML pipelines


  • Documents technical solutions and contributes to code reviews 


  • Designs and builds production-grade models


  • Uses MLflow, Airflow, CI/CD tools


  • Experience with model deployment and monitoring


  • Owns end-to-end AI/ML solutions including architecture, training, deployment, and monitoring


  • Applies domain knowledge to improve model relevance (e.g., IT ops, cybersecurity) 


  • Drives model optimization at scale


  • Understands data engineering best practices


  • Defines org-wide AI/ML standards


  • Oversees architecture for reusable platforms


  • Directs ML model governance and compliance


  • Evaluates and mitigates risks related to fairness, privacy, and regulatory requirements


  • Problem Solving & Innovation


  • Solves small coding and data cleaning problems


  • Ability to analyze and clean datasets 


  • Identifies root causes in data/model issues


  • Applies ML solutions to scoped problems


  • Effective in debugging and troubleshooting code and data issues


  • Selects and tunes algorithms for real-world impact


  • Innovates within team on novel use cases


Collaboration & Communication:


  • Good communication and team collaboration skills 


  • Shares ideas in meetings


  • Communicates findings clearly to peers


  • Contributes to documentation and demos


  • Collaborates cross-functionally to integrate models into services


  • Explains model behavior to technical and semi-technical audiences


  • Interprets results and presents actionable insights to stakeholders


  • Builds trust with cross-functional teams and leadership


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