Senior Machine Learning Operations Engineer

Posted 3 Days Ago
Somerville, MA, USA
In-Office
150K-200K Annually
Senior level
Computer Vision • Hardware • Machine Learning • Robotics • Agriculture
AgZen is tackling two of agriculture’s biggest challenges: waste and pollution.
The Role
Own cloud-native MLOps infrastructure for multimodal sensor data ingestion, processing, labeling, validation, model traceability, deployment gates, monitoring, drift detection, and diagnostics. Partner with data scientists, ML engineers, and stakeholders to ensure reliable pipelines, fresh features, robust model performance, and effective post-deployment metrics. Build visualization and support tools that help technical and nontechnical users understand perception and recommendation systems.
Summary Generated by Built In

About AgZen:

AgZen is a fast-growing precision agriculture company headquartered in Somerville, MA, built on MIT research and focused on one problem: making crop spraying more efficient. Our flagship product, RealCoverage, is the world's first system that measures and controls droplet coverage at the leaf level, giving growers real-time visibility into spray performance and cutting chemical and water use by up to 50% without sacrificing yield.

We are a small, technically deep team working at the intersection of fluid mechanics, computer vision, AI, and real agricultural environments. If you want to build technology with measurable impact on how the world grows food, this is the place to do it.

About the Role

We are looking for a sharp, tenacious, and thorough Senior Machine Learning Operations (MLOps) Engineer to join our team. As part of the the perception team, you’ll own the operational layer around of machine learning models. This role will be responsible for the intake and leveraging crop protection data collected from RealCoverage units installed on sprayers all around the world which is then used improve our CV pipeline and Recommendation Engine. This role will be an essential component of AgZen’s measurement focus group. Strong communication, flexibility, teamwork, the desire to take on different responsibilities and own them will all be essential skills for a successful applicant.

📍 This role is located in Somerville, MA (Boston area) with work required to be in-person.

What You'll Do

  • Own the architecture, execution, and operational excellence of large‑scale, cloud‑native pipelines for multimodal sensor data ingestion, processing, labeling, and validation.

  • Champion model traceability by building a clear lineage for every production model. Track what data trained it, what code produced it, what validation it passed, and how it's performing. Evaluate and recommend tooling for versioning, metadata, and model registry

  • Partner with data scientists to detect data quality issues, detect drift in upstream sources, and ensure features stay fresh and reliable

  • Track model drift over weeks, flag slow degradation before it crosses a threshold, surface feature freshness problems before they cascade

  • Build diagnostic tooling to root cause pipeline and recommendation issues quickly. Ensure the right context is logged at each stage, candidates, features, serving context, and building the dashboards to tie it collectively

  • Own automated gates that block bad deployments and assist in running model issue retrospectives

  • Work with ML engineers, data engineers, and stakeholders to coordinate on post-deployment metrics, defining what metrics to collect after deployment and why they matter

  • Build tooling and support non-technical domain experts in understanding perception system performance and identifying opportunities for pipeline improvement

  • Collaborate closely with cross-functional teams of software engineers, machine learning scientists, product specialists, and researchers to design, build, and maintain robust data pipelines grounded in sound data organization, domain knowledge, and careful analysis

  • Communicate technical findings, data characteristics, and limitations clearly and effectively to both internal partners and external collaborators

What We're Looking For

Required:

  • Bachelor’s or graduate degree in Computer Science, Electrical Engineering, or a closely related field

  • 5+ years of experience building large-scale distributed systems, applications, or advanced ML systems‑scale distributed systems, applications, or advanced ML systems

  • Experience with MLOps, data pipelines, and cloud distributed systems

  • Proficiency in Python for system‑level and performance‑critical implementation

  • Experience operating end‑to‑end data or ML pipelines for reliability, scale, and observability

  • Communication skills that align collaborators and drive execution across functions

  • Familiarity with deep learning frameworks (e.g., PyTorch, TensorFlow)

  • A record of ownership, accountability, and customer‑focused engineering

  • Proven track record of designing robust frameworks with high-quality, durable APIs

  • Deep understanding of machine learning algorithms with hands‑on application

  • Expertise in building reliable, high-performance, and cost-efficient systems on modern cloud infrastructure‑performance

  • Robust SQL skills and comfort digging into data distributions, feature health, and model behavior

Preferred:

  • Experience with the field of agriculture or related fields such as environmental or life sciences

  • Experience with data science based on real-world physical sensors data

  • Experience with vision-based ML

  • Experience creating intuitive data visualization tools that make complex data approachable for non-technical users

  • Prior experience in developing machine-learning models relevant to biological or crop protection outcomes

  • Advanced scientific Python (NumPy, Pandas, scikit-learn) and hands-on experience with PyTorch and/or TensorFlow, including training and deploying neural networks

  • Experience operating recommendation systems at scale

What We Offer

  • The opportunity to make an immediate and visible impact in a fast-growing company

  • Early-employee equity

  • 401(k) with employer matching at 6 months of employment

  • 6 weeks of PTO per calendar year

  • 12 paid holidays

  • Medical, Dental and Vision insurance

The salary range for this position is $150,000 - $200,000 depending on skills and qualifications evaluated on a per candidate basis.

Skills Required

  • Bachelor's or graduate degree in Computer Science, Electrical Engineering, or a closely related field
  • 5+ years of experience building large-scale distributed systems, applications, or advanced ML systems
  • Experience with MLOps, data pipelines, and cloud distributed systems
  • Proficiency in Python for system-level and performance-critical implementation
  • Experience operating end-to-end data or ML pipelines for reliability, scale, and observability
  • Strong cross-functional communication skills
  • Familiarity with deep learning frameworks such as PyTorch or TensorFlow
  • Record of ownership, accountability, and customer-focused engineering
  • Proven track record designing robust frameworks with high-quality, durable APIs
  • Deep understanding of machine learning algorithms with hands-on application
  • Expertise building reliable, high-performance, and cost-efficient systems on modern cloud infrastructure
  • Robust SQL skills and ability to analyze data distributions, feature health, and model behavior
  • Experience with agriculture or related environmental or life sciences fields
  • Experience with real-world physical sensor data
  • Experience with vision-based machine learning
  • Experience creating intuitive data visualization tools for nontechnical users
  • Experience developing machine learning models for biological or crop protection outcomes
  • Advanced scientific Python using NumPy, Pandas, or scikit-learn
  • Hands-on experience with PyTorch or TensorFlow, including training and deploying neural networks
  • Experience operating recommendation systems at scale
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The Company
HQ: Somerville, MA
17 Employees
Year Founded: 2022

What We Do

Each year, billions are spent on pesticides and fertilizers, yet most never reach the crops - resulting in costly waste and significant environmental harm. We’re changing that. By using machine learning, computer vision, and fluid dynamics, AgZen optimizes chemical application in real time, reducing input use, minimizing pollution, and protecting both yields and ecosystems. Founded out of MIT and backed by $13.5M in funding, our multidisciplinary team of engineers and ag science experts is redefining sustainable farming with breakthrough technology. We’re not just improving agriculture, we’re reimagining what’s possible.

Why Work With Us

AgZen combines MIT innovation with real-world farming, using AI and sensor tech to cut chemical use by up to 50% while improving results. Join us to scale breakthrough technology that’s transforming how growers spray, save, and sustain agriculture.

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