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BrickRed Systems
Actively Hiring
IT consulting firm providing business intelligence, security, and quality assurance

Senior AI/ML Engineer

  • Frisco
  • |Contract
Posted: 3 weeks ago
Job Location
Frisco
Remote Work Policy

In office

Visa Sponsorship

Not Available

RelocationAllowed
Skills
Python
A/B Testing
Neo4J
Pandas
Kafka
Graph Databases
Spark
Deep Learning
Collaborative Filtering
Recommender Systems
Record Linkage
Pyspark
MAP
Graph modeling
Precision
CI/CD
Model Monitoring
Entity Resolution
Matrix Factorization
Model Lifecycle Management
Hybrid Models
Amazon Neptune
Ranking Models
NDCG
Recall
Content-Based Recommendations

About the job

We are seeking a highly skilled Senior AI/ML Engineer to lead the design and deployment of scalable AI/ML solutions focused on real-time personalization, recommendation systems, and customer knowledge graphs.

The ideal candidate will have strong hands-on experience with Python, Pandas, PySpark, recommender systems, graph modeling, and graph databases, along with experience building production-grade ML systems that drive measurable improvements in customer engagement, conversion, and personalization.

You will work across ML engineering, data engineering, MLOps, and product/business teams to build scalable batch and real-time ML solutions and deliver context-aware recommendations at scale.

Key Responsibilities

  • Design and build collaborative, content-based, and hybrid recommendation systems.
  • Develop real-time personalization pipelines and ranking models.
  • Architect and implement end-to-end ML systems supporting both batch processing and low-latency streaming inference.
  • Build and maintain customer knowledge graphs using technologies such as Neo4j and Amazon Neptune.
  • Model relationships between customers, users, products, interactions, and behavioral data.
  • Enable Customer 360 insights and context-aware recommendations.
  • Develop scalable data and ML pipelines using Python, Spark, and Kafka.
  • Perform feature engineering, model training, evaluation, and deployment.
  • Implement and optimize recommendation algorithms including matrix factorization, deep learning, and ranking models.
  • Drive experimentation through A/B testing and optimize models for CTR, engagement, conversion, and other business KPIs.
  • Implement entity resolution and record linkage capabilities.
  • Apply MLOps practices, including CI/CD, model monitoring, model lifecycle management, and production reliability.
  • Monitor data quality, model performance, scalability, and system reliability.
  • Work with large-scale data environments and design solutions capable of handling high-volume workloads.
  • Collaborate with Product, Data Engineering, Business, and other technical stakeholders to translate business requirements into scalable AI/ML solutions.
  • Mentor junior and mid-level engineers and contribute to technical design and architecture decisions.

Required Qualifications

  • Strong hands-on experience in AI/ML Engineering and production machine learning systems.
  • Strong Python programming skills.
  • Hands-on experience with Pandas and PySpark.
  • Proven expertise in Recommendation Systems / Recommender Systems.
  • Experience with collaborative filtering, content-based recommendations, hybrid models, matrix factorization, deep learning, and ranking models.
  • Strong experience with Graph Modeling.
  • Hands-on experience with graph databases such as Neo4j or Amazon Neptune.
  • Experience with RDF, graph embeddings, or related graph technologies.
  • Experience with Entity Resolution / Record Linkage.
  • Strong understanding of ML lifecycle, experimentation, model evaluation, and deployment.
  • Experience with recommendation evaluation metrics such as NDCG, MAP, Precision, and Recall.
  • Experience developing scalable pipelines using Python, Spark, and Kafka.
  • Experience with feature engineering, model training, and production deployment.
  • Strong understanding of MLOps, CI/CD, monitoring, and model lifecycle management.
  • Ability to build and support production-grade AI/ML solutions, not just research prototypes.
  • Strong problem-solving and analytical skills.
  • Excellent communication and collaboration skills.

Preferred Qualifications

  • Experience building real-time ML and personalization systems.
  • Experience working with large-scale TB/PB data environments.
  • Experience with low-latency model serving and real-time inference.
  • Experience with Customer 360, customer intelligence, or behavioral analytics.
  • Experience with streaming technologies such as Kafka.
  • Experience with graph embeddings and knowledge graph solutions.
  • Experience optimizing recommendation systems for CTR, engagement, conversion, and personalization.
  • Strong experience working with cross-functional Product, Data, Engineering, and Business teams.
  • Experience mentoring engineers and leading technical initiatives.

Mandatory Skills

AI/ML | Python | Pandas | Graph Modeling | Recommendation Systems | PySpark | Neo4j/Neptune | Entity Resolution | ML Lifecycle

ABOUT BRICKRED SYSTEMS

BrickRed Systems is a global leader in next-generation technology consulting and workforce solutions, specializing in delivering high-quality talent across digital, engineering, marketing, analytics, finance, operations, and business transformation domains. With a strong emphasis on innovation, scalability, and client success, BrickRed Systems helps organizations solve complex business challenges by providing skilled professionals across strategy, technology, creative, and operational functions. BrickRed fosters a culture of continuous learning, collaboration, and excellence, enabling professionals to contribute to high-impact global initiatives while advancing their careers.

About the company

BrickRed Systems company logo
IT consulting firm providing business intelligence, security, and quality assurance501-1000 Employees
Company Location
Redmond
Company Size
501-1000
Learn more about BrickRed Systems image

Funding

AMOUNT RAISED
$350K
FUNDED OVER
1 round
Round
S
$350000
Seed - Apr 2020