
Ace Technologies, Inc.
Hybrid in Chicago, Illinois • Yesterday
Easy Apply
Third Party, Contract
Depends on Experience
135 results (1 new)

Ace Technologies, Inc.
Hybrid in Chicago, Illinois • Yesterday
Easy Apply
Third Party, Contract
Depends on Experience




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Atlassian Inc.
Remote or San Francisco, California • Today
Full-time
USD 206,100.00 - 269,075.00 per year

Position: Senior Machine Learning Engineer – Data Science & Analytics
Contract Length: 6–18 months
Location: Remote (U.S.); Chicago-based candidates strongly preferred
Openings: 2
Important — Please Read Before Submitting
This is a hands-on, in-the-weeds backend software engineering role, not a Data Science position. The hiring manager has been explicit on this point: candidates with Data Science, research, or analytics-only backgrounds are not a fit, regardless of how strong their ML knowledge is. This role requires someone who writes production backend code daily, builds and ships scalable systems, and owns infrastructure end-to-end. Please screen accordingly before submitting.
Position Overview
Hyatt is seeking a Senior Machine Learning Engineer to join its Data Science & Analytics organization. This is a backend engineering role centered on building and operationalizing scalable AI/ML systems in production — hands-on software development, not model research or data analysis.
The engineer will work closely with Data Scientists, Data Engineers, and Architecture teams to productionize ML solutions powering personalization, recommendation systems, analytics platforms, chatbot interfaces, and operational intelligence applications across Hyatt's digital ecosystem. The environment supports roughly 20 active applications and services, and candidates must be comfortable operating with ambiguity and driving solutions independently.
What the Hiring Manager Is Prioritizing
Foundational backend engineering strength, adaptability, and critical thinking matter more than exact tool matches. Strong candidates will demonstrate:
· Exceptional software engineering and computer science fundamentals
· Hands-on experience building and shipping scalable backend systems supporting ML workloads
· Ability to architect, deploy, and maintain production-grade AI/ML services
· Comfort working in ambiguous, fast-evolving environments
· Strong analytical and systematic problem-solving skills
· Fast learning ability and intellectual curiosity
· Experience collaborating cross-functionally with Data Scientists and Engineers
· Proven delivery experience in enterprise or high-scale technology environments
Candidates with primarily research-heavy, analytics-only, or pure Data Science backgrounds will not be considered, unless they also bring substantial, demonstrable production backend engineering experience. This is a builder/engineer role first.
Core Responsibilities
· Design and implement scalable backend architectures supporting ML products
· Build and operationalize AI/ML services across the full product lifecycle: data ingestion, feature engineering, model integration, real-time inference, batch processing, deployment, and monitoring
· Partner with Data Scientists to productionize ML models (engineering the pipeline, not building the models)
· Develop streaming and batch data processing workflows at scale
· Implement infrastructure-as-code and CI/CD deployment pipelines
· Enhance and maintain feature store workflows and ML data pipelines
· Optimize latency, scalability, and reliability of ML systems
· Build services supporting personalization, recommendation engines, search, analytics, and conversational AI
· Collaborate with Data Engineering, Architecture, Governance, and Security teams
· Support cloud-native ML infrastructure within AWS and Google Cloud Platform
· Contribute to system design discussions and architecture decisions
Required Qualifications
· 5+ years of hands-on software engineering experience implementing cloud-native solutions
· Strong, demonstrable experience building backend systems supporting ML/algorithmic products
· Proficiency in Python, SQL, PySpark, Docker
· Strong AWS experience; experience with Google Cloud Platform
· Experience building streaming and batch data architectures at scale
· Strong system design and backend architecture experience
· Experience in Agile environments with DevOps/CI-CD practices
· Excellent communication and collaboration skills
· Master's degree in Computer Science, Software Engineering, or related field (Bachelor's + strong equivalent experience acceptable)
Preferred Qualifications
· Experience with SageMaker
· Understanding of feature stores
· Hospitality, personalization, or recommendation system experience
· Real-time ML inference systems
· Infrastructure-as-code experience
· Experience supporting AI/LLM-enabled applications (team uses existing LLMs rather than building foundational models)
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Once logged in, be sure to complete your profile to get the most accurate match score.
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