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AI Engineer

Jobs via Dice

Menlo Park, CAsenior

  • docker
  • flink
  • kafka
  • kubernetes
  • nosql
  • python
  • pytorch
  • spark
  • sql
  • tensorflow
  • xgboost

Dice is the leading career destination for tech experts at every stage of their careers. Our client, Talent Groups, is seeking the following. Apply via Dice today!

We are looking for an AI Engineer with 12+ years of experience in The candidate will have strong expertise in Python, machine learning model development, real-time data processing, and distributed systems. Hands-on experience with TensorFlow, PyTorch, Spark, Kafka, ML pipelines.

Job Description:

AI Engineer with 10–12 years of experience designing and deploying scalable AI/ML solutions for AdTech platforms covering targeting, bidding, personalization, attribution, and real-time analytics.

The role requires strong engineering fundamentals with hands-on ML model development, data pipelines, and real-time decision systems, leveraging modern distributed and cloud-based architectures.

Key Responsibilities

Develop and deploy AI/ML models for:

  • Audience targeting & segmentation
  • Ad ranking & bidding optimization
  • Attribution & campaign performance modelling
  • Fraud detection & anomaly detection

Build and optimize end-to-end ML pipelines:

  • Data ingestion, feature engineering, training, and inference
  • Batch & real-time model serving
  • Design real-time decisioning systems for high-throughput, low-latency environments.

Collaborate with data engineers and architects to ensure:

  • Scalable data pipelines (ETL/ELT, streaming)
  • High-quality feature stores and model lifecycle management
  • Drive experimentation frameworks (A/B testing, causal inference) to continuously optimize performance metrics.
  • Ensure privacy-aware and compliant AI solutions aligned with data governance frameworks.

Required Qualifications

  • Bachelor’s/Master’s in Computer Science, Data Science, AI/ML, or related field.
  • 10–12 years of experience in AI/ML engineering / Data Science engineering roles.

Strong programming skills in:

  • Python (mandatory)
  • Java or C++ (preferred)

Hands-on experience in:

  • ML frameworks (TensorFlow, PyTorch, XGBoost)
  • Distributed processing (Spark, Flink)
  • Streaming systems (Kafka)
  • SQL & NoSQL databases
  • Experience building production-grade ML pipelines and scalable data systems

Preferred Qualifications

  • Experience in AdTech / MarTech / Retail Media ecosystems

Exposure to:

  • Recommendation systems
  • Real-time bidding systems
  • Experimentation platforms / A/B testing

Familiarity with:

  • Kubernetes, Docker, microservices
  • Privacy and regulatory frameworks (GDPR, data compliance)
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