ML Engineer ((GCP) – Finance Data & AI Platform)

 Posted 16 hours ago
     
5-10 years experience
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AI Summary

Design and deploy scalable machine learning and AI solutions on GCP to support enterprise finance platforms, including forecasting and anomaly detection. Implement production-grade MLOps processes and integrate AI capabilities with finance datasets from SAP and Anaplan.

Title: ML Engineer (GCP) – Finance Data & AI Platform

Location: Remote

Duration: 6+ Months


Job Description

ML Engineer (GCP) – Finance Data & AI Platform

Position Overview

This role will help design, engineer, and operationalize scalable machine

learning and AI solutions across enterprise finance platforms, Finance,

planning, forecasting, KPI intelligence, semantic modeling, and executive

reporting ecosystems.

The ideal contractor will possess strong hands-on implementation expertise

across ML engineering, GCP data services, MLOps, feature engineering,

and enterprise finance analytics.

This is a highly technical delivery-focused role requiring the ability to

operate independently in a large-scale enterprise environment.

Key Responsibilities

ML Engineering & AI Solution Delivery

· Design, develop, test, and deploy enterprise ML solutions on GCP.

· Build predictive analytics and intelligent automation capabilities for

Finance.

· Develop ML models supporting:

o Financial forecasting

o Variance analysis

o Cost optimization

o Operating Income prediction

o Cash flow forecasting

o Financial anomaly detection

· Develop GenAI and NLP-based finance insight capabilities.

GCP AI/ML Platform Development

· Build scalable ML pipelines using:

o Vertex AI

o BigQuery ML

o Dataflow

o Dataproc

o Cloud Composer

o Pub/Sub

o Cloud Functions

· Engineer reusable feature pipelines and metric-serving frameworks.

· Implement production-grade MLOps processes including:

o CI/CD automation

o Model versioning

o Monitoring

o Drift detection

o Automated retraining

Finance Data Platform Integration

· Work with enterprise finance datasets from:

o SAP S/4HANA

o SAP FI/CO

o BW/BPC

o Anaplan

o BigQuery

o Enterprise APIs

· Develop AI-ready finance semantic datasets.

· Partner with Data Engineering and Semantic teams to optimize

feature consumption.

Enterprise Architecture & Governance

· Align ML solutions with enterprise architecture standards.

· Support auditability, governance, lineage, and compliance

requirements.

· Ensure scalable, secure, and production-ready implementation

patterns.

· Participate in architecture reviews and technical design discussions.

Required Qualifications

· 7+ years of overall experience in Data Engineering / ML Engineering.

· 4+ years of hands-on experience implementing ML solutions on GCP.

· Strong enterprise delivery experience in large-scale environments.

· Experience deploying ML models into production ecosystems.

· Strong understanding of scalable cloud-native architectures.

Required Technical Skills

GCP Technologies

· Vertex AI

· BigQuery / BigQuery ML

· Dataflow

· Dataproc

· Cloud Composer

· Pub/Sub

· Cloud Storage

· IAM

· Cloud Functions

ML & AI Technologies

· TensorFlow

· PyTorch

· Scikit-learn

· XGBoost

· Time-series forecasting

· NLP / LLM frameworks

· Feature engineering

· Model optimization

Programming & Engineering

· Python

· SQL

· PySpark / Spark

· REST APIs

· CI/CD pipelines

· GitHub / GitLab

· Terraform preferred

Finance & Enterprise Data Experience

Strong preference for experience with:

· SAP S/4HANA Finance

· FP&A

· Financial reporting

· Forecasting & planning

· KPI engineering

· Finance semantic models

· Enterprise data governance

Preferred Experience

· CVS or healthcare industry experience preferred.

· Experience supporting Finance transformation initiatives.

· Experience with:

o Anaplan

o SAP Analytics Cloud (SAC)

o Tableau

o Power BI

o Sigma Computing

· Experience building AI-enabled executive reporting solutions.

· Experience working in highly governed enterprise environments.

Deliverables Expected from Contractor

· Production-ready ML pipelines

· AI/ML model deployment frameworks

· Reusable feature engineering pipelines

· Forecasting and anomaly detection models

· MLOps automation solutions

· Technical design documentation

· Architecture diagrams and implementation standards

· Knowledge transfer documentation

Soft Skills

· Strong communication and presentation skills.

· Ability to work independently with minimal oversight.

· Strong stakeholder collaboration abilities.

· Strong problem-solving and analytical thinking.

· Ability to operate in fast-paced enterprise programs.

Preferred Certifications

· GCP Professional Machine Learning Engineer

· GCP Professional Data Engineer

· TensorFlow Developer Certification

Sample Finance AI Use Cases

The contractor will contribute to:

· Operating Income prediction models

· Financial anomaly detection

· Intelligent forecasting solutions

· AI-driven variance analysis

· Driver-based planning intelligence

· Executive insight copilots

· GenAI-powered finance assistants

· Automated KPI intelligence platforms


Requirements

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