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Machine Learning Engineer

Job in Orlando, Orange County, Florida, 32885, USA
Listing for: 247Hire
Full Time position
Listed on 2026-05-21
Job specializations:
  • Software Development
    AI Engineer, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 120000 - 160000 USD Yearly USD 120000.00 160000.00 YEAR
Job Description & How to Apply Below

Seeking a Machine Learning Engineer for the following role - Generative AI & ML Frameworks:
PyTorch, Tensor Flow, Hugging Face Transformers, Diffusers Training:
Deep Speed, Accelerate, Ray, distributed training frameworks Models: GPT/LLaMA variants, DALL‑E/Stable Diffusion, Whisper, multi‑modal models Fine‑tuning:
LoRA, QLoRA, Dream Booth, custom training pipelines Infrastructure & Platforms Cloud: GCP Vertex AI, Azure OpenAI, AWS Bedrock, multi‑cloud orchestration Serving:
Tensor

RT, ONNX, Torch Serve, custom inference servers Orchestration:
Kubernetes, Docker, APIGEE, Terraform Data:
Vector databases (Pinecone, Weaviate), feature stores, data versioning Specialized Tools Frameworks:
Autogen, Lang Chain, MCP (Model Context Protocol) Evaluation:
Custom metrics, human evaluation platforms, A/B testing frameworks Monitoring: MLflow, Weights & Biases, custom dashboards

Responsibilities
  • Build text‑to‑image and text‑to‑video generation systems
  • Develop speech synthesis and voice cloning models with safety guardrails for character voices
  • Create image‑to‑text and video‑to‑text systems for content analysis and accessibility
  • Implement cross‑modal generation (text + image? video, audio + text? multimedia content)
  • Build real‑time generative systems for interactive experiences (IoT)
  • Model Evaluation & Quality Assurance
  • Design and implement custom evaluation models for content assessment (brand safety, content ratings, character consistency)
  • Build automated benchmarking systems for generative model performance across multi‑cloud environments
  • Develop specialized ML pipelines for hallucination detection, bias measurement, and factual accuracy assessment
  • Create domain‑specific evaluation frameworks for use cases (content appropriateness, brand alignment, safety compliance)
  • Implement human‑in‑the‑loop evaluation systems with domain experts
  • Research & Advanced Techniques:
    Implement cutting‑edge generative AI techniques: diffusion models, transformer variants, mixture of experts
  • Develop constitutional AI and AI safety techniques for responsible content generation
  • Build adversarial training systems to improve model robustness
  • Research and implement prompt engineering and in‑context learning optimization
  • Create novel architectures for specific generative tasks
  • Production AI/ML Systems:
    Design A/B testing frameworks for generative model comparison and optimization
  • Build real‑time inference optimization for low‑latency content generation
  • Implement model serving infrastructure with auto‑scaling and load balancing
  • Create model monitoring, drift detection, and automatic retraining systems
  • Develop caching and retrieval systems for improved generative AI performance
Key Projects & Use Cases (Marketing Content Generation)
  • Build text‑to‑video systems for promotional content creation
  • Develop brand‑consistent image generation with style transfer
  • Create voice synthesis for character‑based marketing campaigns
Theme Park Innovation
  • Implement real‑time generative systems for interactive guest experiences
  • Build personalized content generation based on guest preferences
  • Develop safety‑aware content generation for operational communications
Customer Experience Enhancement
  • Create personalized response generation for customer support
  • Build multi‑lingual content generation for global audiences
  • Develop accessibility‑focused content generation (audio descriptions, simplified language)
Basic Qualifications
  • 5+ years of hands‑on machine learning engineering with 2+ years focused on generative AI
  • Strong experience with transformer architectures, diffusion models, and large language models
  • Proven track record with model fine‑tuning, RLHF, and parameter‑efficient training techniques
  • Experience with multi‑modal AI systems (text+vision, text+audio, cross‑modal generation)
  • Deep understanding of generative AI training dynamics, loss functions, and optimization techniques
Technical Expertise
  • Expert‑level Python programming with Tensor Flow/PyTorch and distributed training frameworks
  • Experience with cloud ML platforms (GCP Vertex AI, Azure OpenAI, AWS Bedrock) and model serving
  • Strong background in computer vision, NLP, and audio processing for generative applications
  • Knowledge of MLOps,…
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