Senior Research Engineer Santa Clara, CA (On-site)
THE POSITION:
This is an opportunity to work on cutting-edge research and transition innovative algorithms into production systems operating at national scale. This is an opportunity to solve challenging real-world engineering problems while contributing to advanced wireless positioning technologies used in mission-critical environments. You'll work alongside a highly technical team, influence the direction of future products, and help develop innovative solutions that operate at scale
Solve some of the most challenging problems in wireless geolocation and location intelligence with advanced software-based location technologies used in public safety, national security, telecommunications, and commercial applications worldwide by leveraging AI, machine learning, and large-scale analytics to transform location data into actionable intelligence
Work on complex wireless geolocation problems involving incomplete, noisy, and often contradictory data collected from real-world cellular networks
This role combines estimation theory, RF propagation, statistical inference, and large-scale data analysis. You will design algorithms that perform reliably under real-world conditions—not idealized laboratory environments—and help transition research into production systems supporting mission-critical applications
Many of the challenges you'll tackle involve limited or imperfect ground truth, requiring creativity, mathematical rigor, and practical engineering judgment
Example Projects:
Estimate device location using incomplete RF measurements (such as RSRP and Timing Advance) in dense urban environments
Fuse multiple heterogeneous data sources to improve positioning accuracy and reliability
Develop probabilistic models that quantify uncertainty and confidence in location estimates
Extend terrestrial positioning techniques to hybrid terrestrial and Non-Terrestrial Network (NTN) systems
RESPONSIBILITIES:
Lead the development of estimation algorithms for wireless geolocation using real-world measurement data
Formulate and solve complex inference problems using Bayesian estimation, filtering, optimization, and related statistical techniques
Prototype, evaluate, and refine algorithms using large-scale operational datasets
Design validation methodologies to measure accuracy, robustness, and failure modes
Collaborate closely with software engineering teams to transition research into production
Contribute to architectural decisions involving accuracy, latency, scalability, and performance tradeoffs
Present technical findings to both engineering teams and executive leadership
Identify high-impact research opportunities aligned with product and business objectives
KNOWLEDGE, SKILLS, & EXPERIENCE REQUIRED:
PhD in Electrical Engineering, Computer Science, Applied Mathematics, Statistics, or a related field, or equivalent experience solving complex estimation and inference problems
Strong background in estimation theory is required such as: Least Squares, Maximum Likelihood Estimation, Kalman Filtering, Bayesian Methods
Solid understanding of probability, statistics, and optimization
Knowledge of RF propagation, wireless measurements, and cellular network behavior
Strong programming skills in Python and/or MATLAB required
Machine Learning, experience using AI-assisted tools to accelerate coding, research, and data analysis such as TensorFlow, PyTorch, Scikit-Learn, or others
Familiarity applying AI and machine learning techniques to practical engineering challenges
Preferred Experience:
Experience developing algorithms for real-world systems where data is noisy, sparse, or biased
Proven ability to take technical concepts from formulation through implementation and validation
Experience working with large datasets and evaluating model performance under operational conditions
Telecommunications or wireless networking
3GPP standards
Wireless positioning or geolocation systems
Geolocation methods such as trilateration, fingerprinting, or sensor fusion
Non-Terrestrial Networks (NTN), including LEO satellite positioning, RTT-based methods, ephemeris modeling, or hybrid terrestrial/non-terrestrial architectures
Comfortable working in ambiguous environments with limited ground truth
Able to balance theoretical rigor with practical engineering constraints
Strong written and verbal communication skills
Self-motivated with the ability to independently drive research initiatives
Passion for solving difficult technical problems and building systems that perform reliably in real-world conditions
Local candidate or relocation is required; this position is on-site. Must be authorized to work for any employer.
We are an equal opportunity employer, and we are an organization that values diversity. We welcome applications from all qualified candidates, including minorities and persons with disabilities.
req26-00396
Numbers & Facts
Location
Santa Clara, CA
Skills
Algorithmsunmatched
Architectural Servicesunmatched
Artificial Intelligence (AI)unmatched
Bayesian Networksunmatched
Building Systemsunmatched
Communication Skillsunmatched
Computer Programmingunmatched
Computer Scienceunmatched
Data Analysisunmatched
Data Collectionunmatched
Data Setsunmatched
Diversityunmatched
Electrical Engineeringunmatched
Geolocationunmatched
Kalman Filterunmatched
Leadershipunmatched
MATLABunmatched
Machine Learningunmatched
Mathematicsunmatched
Performance Modelingunmatched
Presentation/Verbal Skillsunmatched
Problem Solving Skillsunmatched
Production Supportunmatched
Production Systemsunmatched
Prototypingunmatched
Public Safetyunmatched
Python Programming/Scripting Languageunmatched
Radio Frequency Propagationunmatched
Software Engineeringunmatched
Statisticsunmatched
System Operationsunmatched
Systems Administration/Managementunmatched
Technical Presentationunmatched
Telecommunicationsunmatched
Third Generation Partnership Project (3GPP)unmatched
Training Data Setsunmatched
Wireless Communicationsunmatched
Writing Skillsunmatched
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