VLM Engineer

aqua IT
  • Springfield OR Herndon, Virginia
    8 days ago

    Job Description

    Responsibilities:

    • Design and execute fine-tuning pipelines for Vision-Language Models (VLMs) on domain-specific imagery datasets, including data preprocessing, training orchestration, and hyperparameter optimization
    • Develop and implement evaluation frameworks for multimodal model performance, including task-specific metrics for image understanding, visual question answering, and spatial reasoning
    • Build scalable training infrastructure on AWS (SageMaker, EC2 GPU instances) for distributed fine-tuning of large multimodal models
    • Engineer data pipelines for curating, annotating, and transforming geospatial imagery datasets into model-ready formats for supervised and instruction-tuning workflows
    • Collaborate with applied scientists and solutions architects to iterate on model architectures, adapter strategies (LoRA/QLoRA), and inference optimization techniques 

    Basic Requirements 

    • TS/SCI with CI Poly required
    • 5+ years of professional machine learning engineering experience with a focus on deep learning
    • 1+ years of hands-on experience fine-tuning large foundation models (LLMs or VLMs)
    • Experience with parameter-efficient fine-tuning methods (LoRA, QLoRA, adapters)
    • Familiarity with supervised fine-tuning, instruction tuning, and RLHF/DPO alignment techniques
    • 4+ years of advanced Python development for ML workloads
    • Strong proficiency with PyTorch and the HuggingFace ecosystem (Transformers, PEFT, Datasets, Accelerate)
    • Experience with distributed training frameworks (DeepSpeed, FSDP, or Megatron)
    • 3+ years of experience with computer vision or multimodal models
    • Understanding of vision transformer architectures (ViT, CLIP, LLaVA-family models, or similar)
    • Experience processing and augmenting image datasets at scale
    • 3+ years of experience with AWS ML infrastructure
      SageMaker Training jobs, Processing jobs, and endpoint deployment
      GPU instance selection, multi-node training, and cost optimization on EC2 (P4/P5/G5/G6e), S3 data management for large-scale training datasets
    • 2+ years of experience building ML evaluation pipelines Automated benchmarking, metric computation, and result analysis
    • Experience with both quantitative metrics and qualitative/human evaluation approaches
    • Strong software engineering fundamentals (version control, testing, CI/CD for ML workflows)

    Preferred Qualifications:

    • 2+ years of experience with geospatial or remote sensing imagery
    • Familiarity with electro-optical and SAR satellite imagery formats and characteristics
    • Understanding of geospatial metadata, coordinate systems, and imagery preprocessing
    • Experience with model quantization and inference optimization (vLLM, TensorRT, ONNX)
    • Experience with MLOps and experiment tracking tools (MLflow, Weights & Biases, SageMaker Experiments)
    • Familiarity with data annotation platforms and active learning workflows for imagery
    • Experience with containerized ML workflows (Docker, ECR, ECS/EKS)
    • 2+ years of experience with Authority to Operate (ATO) processes in government environments
    • Implementation of NIST 800-53 controls and security compliance for ML systems
    • Experience deploying models in air-gapped or disconnected environments
    • Familiarity with multimodal evaluation benchmarks (MMMU, MMBench, GQA, or domain-specific equivalents)
    • Publications or demonstrated contributions in computer vision, VLMs, or multimodal AI
    • Experience with synthetic data generation for training data augmentation

    Numbers & Facts

    LocationSpringfield OR Herndon, Virginia

    Skills

    • Amazon Elastic Compute Cloud (EC2)unmatched
    • Amazon Simple Storage Service (S3)unmatched
    • Amazon Web Services (AWS)unmatched
    • Analysis Skillsunmatched
    • Artificial Intelligence (AI)unmatched
    • Benchmarkingunmatched
    • Computer Skillsunmatched
    • Computer Visionunmatched
    • Continuous Deployment/Deliveryunmatched
    • Continuous Integrationunmatched
    • Cost Controlunmatched
    • Data Managementunmatched
    • Data Setsunmatched
    • Deep Learningunmatched
    • Dockerunmatched
    • Ecosystemsunmatched
    • Engineeringunmatched
    • GPU (Graphics Processing Unit)unmatched
    • Governmentunmatched
    • Image Processingunmatched
    • Machine Learningunmatched
    • Metadataunmatched
    • Metricsunmatched
    • Modeling Languagesunmatched
    • Performance Modelingunmatched
    • Publicationsunmatched
    • Python Programming/Scripting Languageunmatched
    • Qualitative Analysisunmatched
    • Scalable System Developmentunmatched
    • Security Complianceunmatched
    • Sensitive Compartmented Information (SCI)unmatched
    • Software Engineeringunmatched
    • Source Code/Configuration Management (SCM)unmatched
    • Testingunmatched
    • Top Secret Clearanceunmatched
    • Training Data Setsunmatched
    • U.S. National Institute of Standards and Technology (NIST)unmatched

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