Senior Machine Learning Engineer
Listed on 2026-09-22
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Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
The Mission Starts Here
The Inc Lab engineers and delivers intelligent digital applications and platforms that revolutionize how our customers and mission-critical teams achieve success.
We are where innovation meets purpose; and where your career can meet purpose as well. We are looking for a Senior Machine Learning Engineer to that will focus on researching, designing, training, and evaluating machine learning models to solve complex, real-world problems. We encourage you to apply and take the first step in joining our dynamic and impactful company.
Your Mission, Should You Choose to AcceptAs a Machine Learning Engineer, you will research, evaluate, and select appropriate machine Learning approaches and architectures based on the problem definition.
What will you do?- Research, evaluate, and select appropriate machine learning approaches and architectures based on the problem definition
- Supervised, unsupervised, and reinforcement learning
- Neural networks, decision trees, ensemble methods
- Transformer-based models, adversarial networks, genetic algorithms
- Retrieval-Augmented Generation (RAG) where appropriate
- Design and implement machine learning models using frameworks such as PyTorch, Tensor Flow, or equivalent
- Formulate and solve optimization problems using ML techniques
- Pathfinding and routing
- Combinatorial and constraint-based optimization Heuristic and learning-based optimization approaches
- Own data pipelines for ML systems
- Data validation and quality checks
- Feature engineering and preprocessing
- Data augmentation strategies for training robustness
- Train, tune, and debug models, addressing issues such as overfitting, instability, bias, and performance degradation
- Define and apply appropriate evaluation metrics, analyze results and iteratively improve model performance
- For transformer-based systems
- Optimize context window usage Manage token budgets, chunking strategies, and retrieval mechanisms
- Balance performance, accuracy, and computational cost
- Integrate ML models and data pipelines into production systems
- Make technical decisions and provide architectural guidance for ML systems
- Document experiments, results, and design decisions using tools such as Git, Jira, and Confluence
- Mentor junior engineers and guide best practices in ML development Stay current with emerging ML research, tools, and techniques
- Ability to travel up to 20%
- Bachelor’s degree in Computer Science, Engineering, Applied Mathematics, or a related field
- 7+ years of professional experience, including significant hands‑on machine learning development
- Strong understanding of machine learning theory and fundamentals
- Model selection and evaluation
- Bias/variance tradeoffs
- Optimization and loss functions
- Demonstrated experience training and evaluating models using frameworks such as PyTorch or Tensor Flow
- Experience building and maintaining end‑to‑end ML pipelines
- Strong programming skills in Python (additional languages are a plus)
- Experience working with real‑world, imperfect datasets
- Ability to explain model behavior, tradeoffs, and limitations to both technical and non‑technical stakeholders
- Strong grasp of software engineering best practices and system design
- Experience with deep learning architectures (CNNs, RNNs, Transformers)
- Experience applying ML to optimization, planning, or decision‑making problems
- Familiarity with distributed training or large‑scale data processing
- Experience with experiment tracking tools (e.g., MLflow, Weights & Biases)
- Experience deploying ML models into production (batch or real‑time inference) Background in research‑driven or R&D‑focused engineering environments
Applicants must be a U.S. Citizen and willing and eligible to obtain a U.S.…
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