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AI/ML Data Engineer - Wealth Management and Financial Services

J M Group Inc - 89 emplois

Toronto, ON

Posté aujourd'hui

Détails de l'emploi :

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We are hiring for an AI/ML Data Engineer- Wealth Management and Financial Services. The role focuses on building cloud-based data platforms, scalable data pipelines, and AI/ML solutions supporting wealth analytics and financial data initiatives.
A strong fit will have 8+ years of data engineering experience with Wealth Management or Financial Services experience and strong expertise in modern data and AI technologies.

What you bring

  • 8+ years of Data Engineering experience, including experience within Wealth Management or Financial Institutions.
  • Strong expertise with Snowflake, Databricks, Apache Spark, PySpark, and modern cloud data platforms.
  • Advanced Python development for data pipelines, AI/ML solutions, automation, and API integrations.
  • Experience building scalable ETL/ELT frameworks using dbt, DataStage, SQL, and cloud-native technologies.
  • Hands-on experience with AWS services including S3, Lambda, SNS, and IAM.
  • Experience with Kafka, Kinesis, Snowpipe, REST APIs, and real-time data ingestion frameworks.
  • Deep SQL expertise including performance tuning, data modeling, data warehousing, and analytics engineering.
  • Experience developing ML models for forecasting, customer analytics, attrition prediction, or financial analytics.
  • Knowledge of GenAI, RAG architectures, Vector Databases, LangChain, LLM integration, and document intelligence solutions.
  • Experience with Airflow, Autosys, CI/CD pipelines, Terraform, Kubernetes, Docker, and MLOps practices.
  • Strong understanding of data governance, data quality, security, compliance, and financial reporting requirements.
  • Excellent stakeholder management skills and ability to work with business, technology, and data leadership teams.

What you'll do

  • Design and implement enterprise-scale data platforms supporting Wealth Management initiatives.
  • Build and optimize data ingestion, transformation, and analytics pipelines processing high-volume financial data.
  • Develop AI/ML and GenAI solutions that improve client insights, operational efficiency, and decision support.
  • Implement data quality, observability, monitoring, and governance controls.
  • Support cloud modernization, migration, and architecture initiatives.
  • Collaborate with business stakeholders and technology teams to translate requirements into scalable solutions.
  • Lead technical design discussions and provide mentorship to junior engineers.

Nice to have

  • Experience with Wealth Management platforms, investment products, portfolio analytics, and market data.
  • Exposure to Elasticsearch, FAISS, Snowpark, Redshift, Aurora, and DB2.
  • Experience converting legacy SAS/DataStage workloads into Spark or cloud-native architectures.
  • Knowledge of Power BI, QuickSight, Tableau, or enterprise reporting platforms.
  • Experience implementing enterprise GenAI and AI governance frameworks.
  • MBA or advanced degree in Business, Data Science, Engineering, or related field.
  • AWS or cloud certifications.

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